Showing posts with label materials science. Show all posts
Showing posts with label materials science. Show all posts

Friday, April 4, 2025

Making Materials Progress


Make it stop: 

'Living' ceramics utilize bacteria for gas sensing and carbon capture
Dec 2024, phys.org

The work involved first 3D printing stacked, ceramic, spiral structures that could stand on their own. The structures were printed with pits on their outer surfaces to give bacteria a place to live. The larger pits were used as a way to channel nutrients to the bacteria.

To further ensure the bacteria could feed for an extended period of time, they set the structures in shallow pools of nutrient solutions. As the water in the solutions evaporated, the nutrients were pulled up to the pits containing the nutrients via capillary action. The bacteria were then allowed to multiply, filling the pores that had been designed for them. Testing showed they could survive without further nutrients for up to two weeks.

The research team used different types of bacteria for different purposes—with photosynthetic cyanobacteria, for example, the structure could serve as a CO2 extraction device, pulling the gas from the air. They also tried Escherichia coli and found that they made the structure a formaldehyde detector.

via ETH Zurich: Alessandro Dutto et al, Living Porous Ceramics for Bacteria‐Regulated Gas Sensing and Carbon Capture, Advanced Materials (2024). DOI: 10.1002/adma.202412555


Self-adjusting shading system mimics pine cones for energy-autonomous weather response
Jan 2025, phys.org

"We are achieving a shading system that opens and closes autonomously in response to changes in the weather, without the need for operational energy or any mechatronic elements. The bio-material structure itself is the machine."

It's based on pine cones. In high humidity, the cellulosic materials absorb moisture and expand, causing the printed elements to curl and open. Conversely, in low humidity, the cellulosic materials release moisture and contract, causing the printed elements to flatten and close.

via University of Stuttgart Institute for Computational Design and Construction: Tiffany Cheng et al, Weather-responsive adaptive shading through biobased and bioinspired hygromorphic 4D-printing, Nature Communications (2024). DOI: 10.1038/s41467-024-54808-8


Unoccupied housing in China's urban areas emitting massive amounts of carbon, study finds
Mar 2025, phys.org

Prior research has shown that by 2021, approximately 17% of homes built in cities in China were unoccupied. Some in the field have suggested that the number has only grown since then, to between 20 and 65 million unoccupied units. This new research found that approximately 17.4% of all new residential units built between 2001 and 2018 have never been occupied

The total the team came up with was 55.81 million tons of carbon emissions solely due to the unoccupied housing units, which they note represent approximately 6.9% of China's total residential emissions. (One source of emissions is the footprint of the materials, and the second comes from heating and cooling, because most of the units are apartment buildings with central heating and cooling.)

via Tsinghua University: Hefan Zheng et al, Unused housing in urban China and its carbon emission impact, Nature Communications (2025). DOI: 10.1038/s41467-025-57217-7

Wednesday, April 2, 2025

The Graphene Zoo

 

From its slightly accidental inception 20 years ago, graphene has now turned into a large branch on the tree of technogenetic life.

Decoding 2D material growth: White graphene insights open doors to cleaner energy and more efficient electronics
Jan 2025, phys.org

White Graphene - the name for hexagonal boron nitride (where you blast out some of the carbon atoms from graphene and fill them with boron nitride instead)

via University of Surrey and Graz University of Technology: Anthony J. R. Payne et al, Unravelling the Epitaxial Growth Mechanism of Hexagonal and Nanoporous Boron Nitride: A First‐Principles Microkinetic Model, Small (2025). DOI: 10.1002/smll.202405404



Graphyne's transformation: A new carbon form with potential for electronics
Feb 2025, phys.org

Graphyne - It's not graphene, it's not carbon like diamonds with its 3-D lattice, it's not like graphite with its 2-D lattice, and it's not graphene with it's 1-D 2-D lattice. It's a 1-D 2-D 3-D lattice. Got it?

via Case Western Reserve University: Ali E. Aliev et al, A planar-sheet nongraphitic zero-bandgap sp2 carbon phase made by the low-temperature reaction of γ-graphyne, Proceedings of the National Academy of Sciences (2025). DOI: 10.1073/pnas.2413194122


Synthetic diamond with hexagonal lattice outshines the natural kind with unprecedented hardness
Feb 2025, phys.org

Synthetic hexagonal diamonds - heating graphene samples to high temperatures while inside a high-pressure chamber. By adjusting the parameters of their setup, the researchers found they could get the graphene to grow into a synthetic diamond with hexagonal lattices.

via Umeå University and materials scientists and engineers affiliated with several institutions in China such as Jilin University: Desi Chen et al, General approach for synthesizing hexagonal diamond by heating post-graphite phases, Nature Materials (2025). DOI: 10.1038/s41563-025-02126-9


Olympicene molecular chains create quantum spin systems with spintronics applications
Mar 2025, phys.org

Olympicenes - open-shell nanographenes (shaped like the Olympics logo)

via Max Planck Institute of Microstructure Physics: Chenxiao Zhao et al, Spin excitations in nanographene-based antiferromagnetic spin-1/2 Heisenberg chains, Nature Materials (2025). DOI: 10.1038/s41563-025-02166-1

Sunday, February 2, 2025

Graphene's End


Since its discovery in 2004, graphene has been heralded as the wonder material of the 21st century, and has been featured here quite often. It's spawned a whole new field of science basically, and it's called metameterials science, based on what's called two-dimensional materials. Twenty years later, we've reached peak graphene, with the news now being taken over by all things -ene, such as goldene or borophene, as seen below:

'Better than graphene' material development may improve implantable technology
May 2024, phys.org
https://phys.org/news/2024-05-graphene-material-implantable-technology.html

Borophene - It's the new graphene, impregnated with boron atoms, which makes it do even crazier things than graphene.

via Pennsylvania State University: Teresa Aditya et al, Chiral Induction in 2D Borophene Nanoplatelets through Stereoselective Boron–Sulfur Conjugation, ACS Nano (2024). DOI: 10.1021/acsnano.4c01792

Image credit: I can find no other credits except for a "3D-news" but this image is possibly related to 2010 Nobel Prize winner Andre Geim, who discovered graphene at University of Manchester in 2004. 


Electric fields boost graphene's potential, study shows
Jun 2024, phys.org

From the home of graphene, Manchester University:
"We demonstrate that electric field effects can disentangle and accelerate electrochemical processes in 2D crystals. This could be combined with state-of-the-art catalysts to efficiently drive complex processes like CO2 reduction, which remain enormous societal challenges."

"Control of these processes gives our graphene devices dual functionality as both memory and logic gate. This paves the way for new computing networks that operate with protons. This could enable compact, low-energy analog computing devices."

via University of Manchester National Graphene Institute: Jincheng Tong et al, Control of proton transport and hydrogenation in double-gated graphene, Nature (2024). DOI: 10.1038/s41586-024-07435-8.


Post Script: Moiré lattices is where you go when graphene ends, so:
Twist-angle in moiré lattice controls valley polarization switching in heterostructures
May 2024, phys.org

In case you were wondering, "they demonstrated for the first time the dependence of valley polarization switching and polarization degree on the moiré period by twist engineering in electrically controlled transition metal dichalcogenide heterobilayers". 

via Institute of Physics of the Chinese Academy of Sciences and Prof. Xu Xiulai of Peking University: Danjie Dai et al, Twist angle–dependent valley polarization switching in heterostructures, Science Advances (2024). DOI: 10.1126/sciadv.ado1281

Wednesday, January 8, 2025

On the Misunderstandings of Thermodynamics


Thermodynamics is hard. 

The very concept of the green roof is an abomination, because it's antithetical to the purpose of a roof to begin with - a green roof is literally storing water on top of the building, on purpose. Roofs are sloped and bound by drainage systems to get the water out as thoroughly and quickly as possible. Water is the enemy, and yet with a  green roof, we're inviting it into the building on purpose. Sounds cool, looks cool, dumbest thing ever.

But then again, cool roofs are also a problem. One of the ways a building gets rid of unintended and uncontrolled water intrusion is through the silent, invisible power of the stack effect (heat rises). A hot roof facilitates and amplifies this stack effect, cooking-out excess moisture that gets into the interstitial spaces in a building. You can make a building as perfect as possible, but water will get in there, because that's what it does, and because nothing is perfect. 

What can sometimes appear like a deficit (roofs get too hot) can actually be an integral part of the overall design (ridding excess moisture). 

This is similar to highly efficient (almost magically efficient) ambient heat pumps - they only use the exact amount of energy needed. Traditional air conditioners are over-designed in that they cool the air way more than they need to. But for hot and humid climates, this has the benefit of removing moisture from the air. A modern, magical heat pump that removes the heat but not the moisture, does not make a comfortable indoor environment, and could actually lead to unintended side effects like mold growth. 


Cool roofs outperform green roofs in urban climate modeling study
July 2024, phys.org

A three-dimensional urban climate model of Greater London tested the thermal effects of different passive and active urban heat management systems, including painted "cool roofs," rooftop solar panels, green roofs, ground level tree vegetation and air conditioning during the two hottest days of the summer of 2018, and found that if adopted widely throughout London, cool roofs could reduce outdoor temperatures across the city about 1.2 C up to 2 C.

Other systems, such as extensive street-level vegetation or solar panels would provide a smaller net cooling effect, only about 0.3 degrees C on average across London, though they offer other environmental benefits. Similarly, while green roofs offer benefits like water drainage and wildlife habitats, their net cooling effect on the city was found to be negligible on average.

Though on average the effect of green roofs was negligible, the researchers found that their effect on temperature varied significantly throughout the day. During the warmest times of day, the wide adoption of green roofs could lower urban temperatures by an average of 0.5 degrees C. However, this would be offset overnight as the thermal mass from the roofs would retain daytime heat, releasing when the sun was down and increasing night-time temperatures by about the same amount.

via University College London: Cool roofs could be most effective at reducing outdoor urban temperatures in London compared with other roof top and vegetation interventions: a mesoscale urban climate modelling study, Geophysical Research Letters (2024). DOI: 10.1029/2024GL109634

Research shows how common plastics could passively cool and heat buildings with the seasons
Jun 2024, phys.org

Roofs and walls are not the same. Roofs have a clear view of the sky, where they can radiate their heat upwards. Walls can't radiate upwards, they're blocked by other things, and they absorb a lot of heat from surrounding buildings and pavement. They're also affected by different "kinds" of heat:

Radiant heat moves from buildings to the sky in a narrow portion of the infrared spectrum known as the atmospheric transmission window, so the researchers call this narrowband. At ground level, radiant heat moves across the entire infrared spectrum, and the researchers call that broadband.

"By coating walls and windows with materials that only radiate or absorb heat in the atmospheric window (like propylene), we can reduce broadband heat gain from the ground in the summer, and loss in the winter, while maintaining the cooling effect of the sky.

via Oak Ridge National Lab, Arizona State University, Princeton and UCLA: Radiative Cooling and Thermoregulation in the Earth's Glow, Cell Reports Physical Science (2024). DOI: 10.1016/j.xcrp.2024.102065.

New fabric makes urban heat islands more bearable
Jun 2024, phys.org

Only hats, shoulder coverings and the tops of shoes - about 3% of clothing - face direct sunlight. The other 97% of are being heated by thermal radiation from the sides and below.

"Solar is visible light, thermal radiation is infrared, so they have different wavelengths. That means you need to have a material that has two optical properties at the same time."

In tests under the Arizona sun, the material kept 2.3 C (4.1 F) cooler than the broadband emitter fabric used for outdoor endurance sports and 8.9 C (16 F) cooler than the commercialized silk commonly used for shirts, dresses and other summer clothing.

via University of Chicago: Ronghui Wu et al, Spectrally engineered textile for radiative cooling against urban heat islands, Science (2024). DOI: 10.1126/science.adl0653

Wednesday, September 18, 2024

Buildings, Bodies and Biocompatibility


How are ancient Roman and Mayan buildings still standing? Scientists are unlocking their secrets
Oct 2023, phys.org

There's 2,000-year-old concrete still looking like the day it was poured. And there's also the front steps of my friend's apartment that's been crumbling since the day it got repaired. 

What's the difference? 

Some of these ancient builders might have just gotten lucky, said Cecilia Pesce, a materials scientist at the University of Sheffield in England. They'd toss just about anything into their mixes, as long as it was cheap and available—and the ones that didn't work out have long since collapsed.

"They would put all sorts of things in construction," Pesce said. "And now, we only have the buildings that survived. So it's like a natural selection process."

But alas, there does seem to be a pattern:
In a study published earlier this year, Admir Masic, a civil and environmental engineer at the Massachusetts Institute of Technology, proposed that this power comes from chunks of lime that are studded throughout the Roman material instead of being mixed in evenly. Researchers used to think these chunks were a sign that the Romans weren't mixing up their materials well enough.

Instead, after analyzing concrete samples from Privernum -- an ancient city outside of Rome -- the scientists found that the chunks could fuel the material's "self-healing" abilities. When cracks form, water is able to seep into the concrete, Masic explained. That water activates the leftover pockets of lime, sparking up new chemical reactions that can fill in the damaged sections.
via MIT



Catalysis breakthrough yields self-cleaning wall paint that breaks down air pollutants when exposed to sunlight
Mar 2024, phys.org

The UV radiation creates free charge carriers in the particles, which induce decomposition of the trapped pollutants from air into small parts and their release. In this way, the pollutants are rendered harmless, but do not remain permanently attached to the wall paint. The wall color remains stable in the long term. The new particles work with ordinary sunlight by adding certain additional atoms to the titanium oxide nanoparticles, such as phosphorus, nitrogen, and carbon.

via Vienna University of Technology and Università Politecnica delle Marche: Qaisar Maqbool et al, Highly Stable Self-Cleaning Paints Based on Waste-Valorized PNC-Doped TiO2 Nanoparticles, ACS Catalysis (2024). DOI: 10.1021/acscatal.3c06203


Veins of bacteria could form a self-healing system for concrete infrastructure
Dec 2023, phys.org

Fiber reinforcement has been around since the first masons mixed horsehair into their mud. 

BioFiber - polymer fiber encased in a bacteria-laden hydrogel and a protective, damage-responsive shell. The team reports that a grid of BioFibers embedded within a concrete structure can improve its durability, prevent cracks from growing, and enable self-healing.

It uses biomineralizing bacteria, aka microbial-induced calcium carbonate precipitation.

via Drexel University: Mohammad Houshmand Khaneghahi et al, Development of a nature-inspired polymeric fiber (BioFiber) for advanced delivery of self-healing agents into concrete, Construction and Building Materials (2023). DOI: 10.1016/j.conbuildmat.2023.133765


New AI tool discovers realistic 'metamaterials' with unusual properties
Feb 2024, phys.org

They call it "inverse design"

"Tell us what you want to have as properties and we engineer an appropriate material with those properties. What you will then get is not really a material but something in-between a structure and a material, a metamaterial" 

via Delft University of Technology Department of Biomechanical Engineering: Helda Pahlavani et al, Deep Learning for Size‐Agnostic Inverse Design of Random‐Network 3D Printed Mechanical Metamaterials, Advanced Materials (2023). DOI: 10.1002/adma.202303481

AI Art - Regenerative Plant Researcher 2 - 2024

New all-liquid iron flow battery for grid energy storage
Mar 2024, phys.org

A commonplace chemical used in water treatment facilities has been repurposed for large-scale energy storage in a new battery design for an iron-based flow battery.

It stores energy in a unique liquid chemical formula that combines charged iron with a neutral-pH phosphate-based liquid electrolyte, or energy carrier. 

The chemical, nitrogenous triphosphonate, nitrilotri-methylphosphonic acid or NTMPA, is commercially available in industrial quantities because it is typically used to inhibit corrosion in water treatment plants.

via Pacific Northwest National Laboratory: Phosphonate-based Iron Complex for a Cost-Effective and Long Cycling Aqueous Iron Redox Flow Battery, Nature Communications (2024). DOI: 10.1038/s41467-024-45862-3


Biodegradable aerogel: Airy cellulose from a 3D printer
Apr 2024, phys.org

Using the most common biopolymer on Earth (cellulose), they created a cellulose-based, 3D-printable aerogel, made of nanofibers for viscosity and nanocrystals so that it flows more easily during extrusion. To turn the ink into an aerogel after printing, the researchers replace the pore solvent water first with ethanol and then with air, all while maintaining shape fidelity.

It's an extremely effective heat insulator, and it's biocompatible with living tissues and cells.

It also can be rehydrated and re-dried several times after the initial drying process without losing its shape or porous structure, so it can be stored and transported in dry form and only be soaked in water shortly before use.

via Swiss Federal Laboratories for Materials Science and Technology: Deeptanshu Sivaraman et al, Additive Manufacturing of Nanocellulose Aerogels with Structure‐Oriented Thermal, Mechanical, and Biological Properties, Advanced Science (2024). DOI: 10.1002/advs.202307921


Sunrise to sunset, a new window coating blocks heat, not view
Apr 2024, phys.org

Some window coatings work for a 90-degree angle. Yet at the hottest time of day, the sun's rays enter at oblique angles.

They fabricated a transparent window coating by stacking ultra-thin layers of silica, alumina and titanium oxide on a glass base, with a micrometer-thick silicon polymer added to enhance cooling power. To shuffle the layers into an optimal configuration the team used quantum computing, or more specifically, quantum annealing, and validated their results experimentally.

(Note: We're now using quantum computers to validate experiments, and this is kind of the real story here.)

via University of Notre Dame: Seongmin Kim et al, Wide-angle spectral filter for energy-saving windows designed by quantum annealing-enhanced active learning, Cell Reports Physical Science (2024). DOI: 10.1016/j.xcrp.2024.101847

AI Art - Regenerative Plant Researcher 3 - 2024

How buildings influence the microbiome and human health
Apr 2024, phys.org

Modern buildings have a significant influence on human microbial colonization, depending on their nature and degree of shielding from the environment, and that this aspect should be taken into account in future architecture in terms of healthy and microbiome-friendly building conditions.

Buildings interrupt contact with microorganisms from the environment.

Future architecture should restore permeability for microorganisms.

Buildings themselves must be viewed as complex organic systems in the sense of countless interdependent microbial communities, which also have an impact on the human metaorganism.

Taken together, this has negative consequences, for example by creating new niches for disease hosts and vectors in buildings, concentrating waste and toxic substances or reducing ventilation and the entry of sunlight.

According to the researchers, one aim could therefore be to plan and construct the built environment in future in such a way that the focus is not on complete isolation from the natural, microbial environment. On the contrary: buildings can be opened up to nature again and made more nature-friendly.

This can be achieved, for example, by using less toxic building materials and creating an overall greater structural permeability to external, particularly microbial, influences.

via Kiel University Collaborative Research Center 1182 Origin and Function of Metaorganisms and the Canadian Institute for Advanced Research in Toronto, Columbia University, University of Oregon, California Institute of Technology: Thomas C. G. Bosch et al, The potential importance of the built-environment microbiome and its impact on human health, Proceedings of the National Academy of Sciences (2024). DOI: 10.1073/pnas.2313971121


Intelligent liquid: Researchers develop metafluid with programmable response
Apr 2024, phys.org

This came out in April 2024 - How the hell was this not in any other headlines? This is literally the T-1000 

They developed a programmable metafluid with tunable springiness, optical properties, viscosity and can transition between a Newtonian and non-Newtonian fluid.

It's a suspension of small, elastomer spheres between 50 to 500 microns that buckle under pressure,  changing the characteristics of the fluid.

A new class of fluid.

With this metafluid, no sensing is needed. The liquid itself responds to different pressures, changing its compliance to adjust the force of the gripper to be able to pick up a heavy bottle, a delicate egg and a small blueberry, with no additional programming.

Also this line:

"We show that we can use this fluid to endow intelligence into a simple robot"
(Because that is exactly what we all want right now.)

via Harvard John A. Paulson School of Engineering and Applied Sciences:  Katia Bertoldi, Shell buckling for programmable metafluids, Nature (2024). DOI: 10.1038/s41586-024-07163-z.

Friday, July 26, 2024

Calling All Alphas


Using this picture just for the prompt: 
A flowchart of scientific icons that represents a partner ecosystem for use as a slide background. modern. brand colours are #024da1 and #37b884. blues and greens. ultrahd, kodak colour quality, 8k.

First, just what you've been waiting for, a robot that can read braille:

3D-printed hairs: Professor developing tiny sensors to detect flow and environmental changes
Oct 2023, phys.org

Tiny, 3D-printed sensors that look like human hairs can sense sustained pressures, quick pressures,  temperature changes, and sliding force -- Uses could include minimally-invasive surgical robots equipped with cilia mechanoreceptors to better detect minute changes in pressure or temperature, industrial machines that can measure air or water flow, a robot that can read braille.

via Virginia Commonwealth University: Phillip Glass et al, 3D‐Printed Artificial Cilia Arrays: A Versatile Tool for Customizable Mechanosensing, Advanced Science (2023). DOI: 10.1002/advs.202303164


Next, there's a couple themes mixing and matching here, but the idea is that the Big Data revolution of the last decade is really the Big Training Set for the artificial minds of the future. We're getting another planet's worth of mental labor here, like having an extra few million chemists, physicists, biologists. But then there's the overall computing infrastructure that we've amassed, and that we can apparently use the latent energy, the idle power in between processes, to run calculations. So the computer can perform calculations, on itself, while it does these other things, maybe we would call it a meta-computer, or meta-computation, or sentience (jk). In the end we see that humans are still, and will be for a long time, an essential ingredient:

Google’s DeepMind finds 2.2M crystal structures in materials science win
Nov 2023, Ars Technica

The trove of theoretically stable but experimentally unrealized combinations identified using an AI tool known as GNoME is more than 45 times larger than the number of such substances unearthed in the history of science, according to a paper published in Nature on Wednesday.

DeepMind's AI system AlphaGeometry able to solve complex geometry problems at a high level
Jan 2024, phys.org

via Google's DeepMind and NYU: Trieu H. Trinh et al, Solving olympiad geometry without human demonstrations, Nature (2024). DOI: 10.1038/s41586-023-06747-5


Chemists use blockchain to simulate more than 4 billion chemical reactions essential to origins of life
Jan 2024, phys.org

Great - this whole thing is freaking me out but not sure why; combining distributed computing with biological research is the plot for a good algorithmic overlord origin story though:

Researchers chose a set of starting molecules likely present on early Earth, including water, methane, and ammonia, and set rules about which reactions could occur between different types of molecules, then translated this information into a language understandable by computers, then used the blockchain to calculate which reactions would occur over multiple expansions of a giant reaction network.

They generate the network using Golem, a platform that orchestrates portions of the calculations over hundreds of computers across the world, which receive cryptocurrency in exchange for computing time. For a fraction of the cost, in two or three months, we finished a task of 10 billion reactions, 100k times bigger than we did previously."

The resulting network, termed NOEL for the Network of Early Life, started off with more than 11 billion reactions, which the team narrowed down to 4.9 billion plausible reactions. NOEL contains parts of well-known metabolic pathways like glycolysis, close mimics of the Krebs cycle, which organisms use to generate energy, and syntheses of 128 simple biotic molecules like sugars and amino acids.

Curiously, of the 4.9 billion reactions generated, only hundreds of reaction cycles could be called "self-replicating," which means that the molecules produce additional copies of themselves.

The part that scares: "With a platform like Golem you can connect your institution's network and harness the entire idle power of its computers to perform calculations. You could create this computing infrastructure without any capital expenditure."

via Korea Institute for Basic Science, the Polish Academy of Sciences, and Allchemy: Emergence of metabolic-like cycles in blockchain-orchestrated reaction networks., Chem (2024). DOI: 10.1016/j.chempr.2023.12.009.


Widely used AI tool for early sepsis detection may be cribbing doctors' suspicions
Feb 2024, phys.org

Humans all the way down 

The Epic Sepsis Model is an electronic medical record software that automatically generates sepsis risk estimates in the records of hospitalized patients, and serves 54% of patients in the United States and 2.5% of patients internationally.

"Sepsis has all these vague symptoms ... We still miss a lot of patients with sepsis"

The hope is that AI predictions could be instrumental in making that happen, but at present, they don't seem to be getting more out of patient data than clinicians are.

"We suspect that some of the health data that the Epic Sepsis Model relies on encodes, perhaps unintentionally, clinician suspicion that the patient has sepsis"

When including the predictions made by the AI at all stages of the patient's hospital stay, the AI could correctly identify a high-risk patient 87% of the time. However, the AI was only correct 62% of the time when using patient data recorded before the patient met criteria for having sepsis. Perhaps most telling, the model only assigned higher risk scores to 53% patients who got sepsis when predictions were restricted to before a blood culture had been ordered.

via University of Michigan: Fahad Kamran et al, Evaluation of Sepsis Prediction Models before Onset of Treatment, NEJM AI (2024). DOI: 10.1056/AIoa2300032

Post Script: Public service announcement - mostly any study, report, quip, or advertisement you hear about "what an AI can do" is worthless (when in reference to commercial entities like ChatGPT or OpenAI). We measure it however we want, with no means of normalizing our inquiries, and we can't even see into the base algorithms anyway because they're all proprietary. It takes a study like this to find out what's really going on, and it's for a system that's already implemented in "54% of patients in the United States and 2.5% of patients internationally" (^above)

Thursday, January 18, 2024

Discoveries in Building and Material Science


Rethinking the incandescent lightbulb
Apr 2023, phys.org

Instead of tossing out incandescent bulbs, they have made them more efficient using a two-layer filament of carbon nanotube and a nitrogen-boron ceramic, and rather than placing it in a glass bulb they put it in a box with a window made of a type of quartz that allows for recycling photons.

They call the result a photon-recycling incandescent lighting device, with energy efficiency nearly equal to an LED bulb, a much longer lifetime and color fidelity nearly on a par with traditional incandescent bulbs.

via School of Materials Science and Engineering State Key Laboratory of Metal Matrix Composites at Center for Hydrogen Science, and Zhiyuan Innovative Research Center of Shanghai Jiao Tong University, Shanghai HeiYi Materials Technology Co. Ltd., Shanghai IdeaOptics Co. Ltd., Tianjin H-Chip Technology Group Corporation: Heng Zhang et al, A photon-recycling incandescent lighting device, Science Advances (2023). DOI: 10.1126/sciadv.adf3737



Termite mounds reveal secret to creating 'living and breathing' buildings that use less energy
May 2023, phys.org

I'm not getting what's so special -- I do remember hearing about termite mounds 15 years ago at the biomometic architecture lectures. Maybe it's because they got better at modeling. Also this: "We imagine that building walls in the future, made with emerging technologies like powder bed printers, will contain networks similar to the egress complex. These will make it possible to move air around, through embedded sensors and actuators that require only tiny amounts of energy," said Andréen.

via bioDigital Matter research group of Lund University, School of Architecture, Design and the Built Environment at Nottingham Trent University: Termite-inspired metsamaterials for flow-active building envelopes, Frontiers in Materials (2023). DOI: 10.3389/fmats.2023.1126974.


Saudi Arabia's 'The Line' isn't a revolution in urban living, say researchers
Jun 2023, phys.org

(No shit)

Something about the base design parameter of the human body and human mobility:

The Line is planned to be a city built from nothing in the desert. It is to consist of two gigantic, unbroken rows of skyscrapers, with living space in between. It is planned to be 170 kilometers long, 200 meters wide and 500 meters high, higher than any building in Europe, Africa, and Latin America, stretching straight ahead from the Red Sea to the east.

Nine million people are expected to live in it—more than in any other city in Saudi Arabia. This translates into a population density of 265,000 people per square kilometer—ten times denser than Manhattan and four times denser than the inner districts of Manila, currently estimated to be the densest urban neighborhoods on Earth. 

"A line is the least efficient possible shape of a city," says Prieto-Curiel. "There's a reason why humanity has 50,000 cities, and all of them are somehow round," he emphasizes.

Assuming a walking distance of one kilometer, only 1.2% of the population is within walking distance from each other. This hinders active mobility, so people will depend on public transport.

The backbone of public transportation is planned to be a high-speed rail system. "For everyone to be within walking distance of a station, there must be at least 86 stations," explains CSH researcher Dániel Kondor. As a result, trains spend considerable time in stations and will not be able to reach high travel speeds between any two stations.

According to the researchers, a trip, therefore, is expected to take 60 minutes on average, and at least 47% of the population would have an even longer commute. Even with additional express lines, gains are limited due to the additional transfers necessary. The result is that people would still be traveling longer than in other major cities, such as Seoul, where 25 million people commute for less than 50 minutes.

Good point to remember: While planned cities often did not live up to expectations; thus, there is a need for more public engagement about urban design on a human scale.

Another point to remmeber? Mazdar still doesn't really exist.

via Complexity Science Hub Vienna: Rafael Prieto-Curiel et al, Arguments for building The Circle and not The Line in Saudi Arabia, npj Urban Sustainability (2023). DOI: 10.1038/s42949-023-00115-y

AI Art - Number Two Number Two - 2022

Want better kimchi? Make it like the ancients did
Apr 2023, phys.org

The porous structure of these earthenware vessels mimics the loose soil where lactic acid bacteria—known for their healthy probiotic nature—are found. While previous studies have shown that kimchi fermented in onggi has more lactic acid bacteria, no one knew exactly how the phenomenon is connected to the unique material properties of the container.

They concluded that the onggi's porous walls permitted the carbon dioxide to escape the container, which accelerated the speed of fermentation. The onggi's porosity also functioned as a "safety valve," resulting in a slower increase in carbon dioxide levels than the glass jar while blocking the entry of external particles. Their data revealed that the carbon dioxide level in onggi was less than half of that in glass containers.

They also found that the beneficial bacteria in the onggi-made kimchi proliferated 26% more than in the glass counterpart. In the glass jar, the lactic acid bacteria became suffocated by their own carbon dioxide in the closed glass container. It turns out that because the onggi releases carbon dioxide in small rates, the lactic acid bacteria are happier and reproduce more.

"Onggi were designed without modern knowledge of chemistry, microbiology, or fluid mechanics, but they work remarkably well"

There's a pretty in-depth video about Onggi pottery where traditional artisans and university scientists get together to analyze the properties of clay vessels made in four different permutations, and they find that handmade pots or wood-fired kilns (but not poured-mold pots or gas-fired kilns) make holes in the clay too small for water to enter, but large enough for air to leave. They remind us these properties are like the high-tech modern day Gore-Tex, yet Korean potters have known how to do it for millenia. 
via Georgia Institute of Technology: Soohwan Kim et al, Onggi's permeability to carbon dioxide accelerates kimchi fermentation, Journal of The Royal Society Interface (2023). DOI: 10.1098/rsif.2023.0034


Secret ingredient in durable Maya plaster discovered
Apr 2023, phys.org

Just building things (and a recipe for building in the coming age of the subtropical rainforest jungle planet)

The typical process for creating plaster involves calcination (baking) of carbonate rock material, such as limestone, and then mixing in water while allowing the material to react with carbon dioxide in the air. The result is known commonly as lime mortar. The team followed this formula but also mixed in sap and then used it as a plaster. Testing showed that it had the same properties as the ancient Maya plaster, which included water solubility, making it impervious to the extreme Honduran humidity.

via University of Granada: Carlos Rodriguez-Navarro et al, Unveiling the secret of ancient Maya masons: Biomimetic lime plasters with plant extracts, Science Advances (2023). DOI: 10.1126/sciadv.adf6138


Clever coating turns lampshades into indoor air purifiers
Aug 2023, phys.org

Plot Twist!

(Now we need to go back to using incandescent bulbs to make use of their waste heat!)

The room is filled with acetylene gas, then an aluminum lampshade coated with a thermocatalysts made of titanium dioxide and a small amount of platinum (or less expensive iron- or copper-based catalysts), heated to 250F by a 100-watt halogen light bulb, to eventually turn the acetylene gas into acetic acid, then formic acid, and then carbon dioxide and water.

via Yonsei University in Korea: Thermocatalytic oxidation of VOC through harnessing indoor waste heat, American Chemical Society Fall 2023.

AI Art - Eternal Golden Braid - 2023

Material would allow users to 'tune' windows to block targeted wavelengths of light
Sep 2023, phys.org

The key to more dynamic window materials is water.

Specifically, the researchers found that -- 

When water is bound within the crystalline structure of a tungsten oxide to form tungsten oxide hydrate, the material exhibits a previously unknown behavior where (if lithium ions and electrons are injected into the hydrate material) it first transitions into a "heat blocking" phase, allowing visible wavelengths of light to pass through, but blocking infrared light; but if even more lithium ions and electrons are injected, the material then transitions into a dark phase, blocking both visible and infrared wavelengths of light.

"The presence of water in the crystalline structure makes the structure less dense, so the structure is more resistant to deformation when lithium ions and electrons are injected into the material," says Jenelle Fortunato, first author of the paper and a postdoctoral fellow at NC State.

via Materials Science and Engineering at North Carolina State University and University of Texas at Austin: Jenelle Fortunato et al, Dual-Band Electrochromism in Hydrous Tungsten Oxide, ACS Photonics (2023). DOI: 10.1021/acsphotonics.3c00921


Pottery becomes water treatment device for Navajo nation
Oct 2023, phys.org

Awesome in every way:

The team has developed a new water filtration solution for members of the Navajo Nation, lining clay pots with pine tree resin collected from the Navajo Nation and incorporating tiny, silver-based particles that can be used to purify water to make it drinkable. 

They worked closely with a third-generation potter from Arizona—Deanna Tso, who is also a co-author on the paper—to create a device that is simple for the users. All they have to do is pour water through the clay pots, and the coated pottery removes bacteria from water and generates clean, drinkable water.

The Navajo Nation has a history of mistrust of outsiders, the researchers say, and that makes it less likely that people there would adopt a new technology made entirely by others. Using pottery, working with the community, and relying on local materials were important to the effectiveness of this project. 

"Navajo pottery is at the heart of this innovation because we hoped it would bridge a trust gap," said Lewis Stetson Rowles III, now a faculty member at Georgia Southern University's Department of Civil Engineering and Construction after earning a Ph.D. from UT in 2021. "Pottery is sacred there, and using their materials and their techniques could help them get more comfortable with embracing new solutions." 

The materials and construction process for the pots cost less than $10, making for a potentially low-cost solution. 

"This is just the beginning of trying to solve a local problem for a specific group of people," Saleh said. "But the technical breakthrough we've made can be used all over the world to help other communities." 

via University of Texas at Austin Department of Civil, Architectural and Environmental Engineering: Lewis S. Rowles et al, Integrating Navajo Pottery Techniques To Improve Silver Nanoparticle-Enabled Ceramic Water Filters for Disinfection, Environmental Science & Technology (2023). DOI: 10.1021/acs.est.3c03462

Origami Art and Interdimensional Insight


Self-folding origami machines powered by chemical reactions
May 2023, phys.org

They used electronic structure calculations to dissect the chemical reaction that occurs when hydrogen—adsorbed to the material—is exposed to oxygen, and were then able to exploit the crucial moment that the oxygen quickly strips the hydrogen, causing the atomically thin material to deform and bend, like a hinge. The system actuates at 600 milliseconds per cycle and can operate at 20C/68F, room temperature, in dry environments.

via Cornell University: Nanqi Bao et al, Gas-phase microactuation using kinetically controlled surface states of ultrathin catalytic sheets, Proceedings of the National Academy of Sciences (2023). DOI: 10.1073/pnas.2221740120



New discovery toward sugar origami
Jul 2023, phys.org

Self-folding biopolymer made of a carbohydrate sequence of polysaccharides capable of folding into a stable secondary structure

"Carbohydrates can be generated with programmable shapes..."

via Max Planck Institute of Colloids and Interfaces: Giulio Fittolani et al, Synthesis of a glycan hairpin, Nature Chemistry (2023). DOI: 10.1038/s41557-023-01255-5


How origami might inform disease diagnoses
Aug 2023, phys.org

Origami -- rigid materials are folded with electrodes on each side of the panel, like an upside down, opened book with two electrodes on the front and back covers. As the electrodes unfold the strength of the electrical field between the electrodes is captured.

via University of Southern California Viterbi School of Engineering: Xinghao Huang et al, High-Stretchability and Low-Hysteresis Strain Sensors Using Origami-Inspired 3D Mesostructures, Science Advances (2023). DOI: 10.1126/sciadv.adh9799.


Researchers reveal van Hove singularity at Fermi level in kagome superconductor
Aug 2023, phys.org

Kagome -- origami-like -- I can't understand one word of this -- the superconducting state in CsV3-xTaxSb5 has significantly different characteristics from the superconducting state in CsV3Sb5 through scanning tunneling microscopy experiments, indicating the possibility of unconventional pairing superconductivity in the van Hove scenario.

via University of Science and Technology of China: Yang Luo et al, A unique van Hove singularity in kagome superconductor CsV3-xTaxSb5 with enhanced superconductivity, Nature Communications (2023). DOI: 10.1038/s41467-023-39500-7


Engineers use kirigami to make ultrastrong, lightweight structures
Aug 2023, phys.org

Kirigami -- Inspired by bones and other cellular solids found in nature, humans have used the same concept to develop a high-performance architected material known as a plate lattice, on a much larger scale than scientists have previously been able to achieve by additive fabrication. The way the researchers design, fold, and cut the pattern enables them to tune certain mechanical properties, such as stiffness, strength, and flexural modulus (tendency to resist bending).

via MIT Center for Bits and Atoms: Kirigami Corrugations: Strong, Modular, and Programmable Plate Lattices. cba.mit.edu/docs/papers/0821.ASME-Kirigami.pdf


Battery-free robots use origami to change shape in mid-air
Sep 2023, phys.org

When these "microfliers" are dropped from a drone, they use a Miura-ori origami fold to switch from tumbling and dispersing outward through the air to dropping straight to the ground. To spread out the fliers, the researchers control the timing of each device's transition using a few methods: an onboard pressure sensor (estimating altitude), an onboard timer or a Bluetooth signal.

This particular origami type is inspired by the geometries found in leaves, go figure.

via University of Washington: Kyle Johnson et al, Solar-powered Shape-changing Origami Microfliers, Science Robotics (2023). DOI: 10.1126/scirobotics.adg4276.

Thursday, May 4, 2023

MOF-Mania


Nothing says synthetic biology, artificial life, or humanoid biobots like metal-organic frameworks (MOFs). It's in the name. 


Designing the perfect membrane for clean separation of gases
Jun 2022, phys.org

MMOF - mixed-matrix metal-organic framework (MOF nanosheets in a polymer matrix)

via King Abdullah University of Science and Technology: Shuvo Jit Datta et al, Rational design of mixed-matrix metal-organic framework membranes for molecular separations, Science (2022). DOI: 10.1126/science.abe0192. www.science.org/doi/10.1126/science.abe0192




Researchers use biomolecule-loaded metal-organic frameworks nanopatterns to aid artificial stem cell differentiation
Jun 2022, phys.org

MOFs, or metal organic frameworks, are hybrid crystalline porous materials constructed using metal ions and organic ligands. Due to their porous nature, MOFs are excellent for trapping and releasing molecules of interest over a long period of time. This gave the team the idea to use MOFs for storing and releasing from nanopit arrays biocompatible nanoparticles necessary for stem cell differentiation.

via Chung-Ang University, Republic of Korea: Yeon-Woo Cho et al, Single metal-organic framework–embedded nanopit arrays: A new way to control neural stem cell differentiation, Science Advances (2022). DOI: 10.1126/sciadv.abj7736


GTUB3 is the first microporous, metal-organic solid that is both conductive and photoluminescent
Dec 2022, phys.org

The problem to date is that the majority of MOFs are very poor conductors of electricity. The new material created by the researchers, called GTUB3, is both a good conductor as well as chemically and thermally extremely stable. What makes it unique is that it is also photoluminescent, meaning that it glows when irradiated with light. As a result, it could also be used in optoelectronic applications and solar cells.

via Technical University of Berlin: Yunus Zorlu et al, Electrically Conductive Photoluminescent Porphyrin Phosphonate Metal–Organic Frameworks, Advanced Optical Materials (2022). DOI: 10.1002/adom.202200213


New AI model transforms understanding of metal-organic frameworks
Mar 2023, phys.org

"We pre-trained the MOFTransformer with a million hypothetical MOFs to learn their essential characteristics, which we represented as a sentence. The model was then trained to complete these sentences to give the MOF's correct characteristics."

via Ecole Polytechnique Federale de Lausanne and KAIST: Jihan Kim, A multi-modal pre-training transformer for universal transfer learning in metal–organic frameworks, Nature Machine Intelligence (2023). DOI: 10.1038/s42256-023-00628-2.


Monday, October 31, 2022

Energy Everywhere


'Night-time solar' technology can now deliver power in the dark
May 2022, phys.org

A semiconductor device called a thermoradiative diode, composed of materials found in night-vision goggles, was used to generate power from the emission of infrared light.

via University of New South Wales School of Photovoltaic and Renewable Energy Engineering: Michael P. Nielsen et al, Thermoradiative Power Conversion from HgCdtTe Photodiodes and Their Current–Voltage Characteristics, ACS Photonics (2022). DOI: 10.1021/acsphotonics.2c00223

The image shows a piece of Comet Leonard's tail breaking off and being carried away by the solar wind; said to be one of the best comet photographs in history by astronomer Dr Ed Bloomer, one of the competition judges.


A thermal management material that responds to heat or cold by folding or unfolding without need for a power source
Sep 2022, phys.org

Made with polymer subunits each designed to behave differently depending on ambient temperature: the material would lay flat under normal conditions until the ambient temperature reached a certain point. At that point, the top layer would roll itself up into a tube, exposing the dark substrate below. They suggest it could be a thermal management device that requires zero energy to run.

via Nankai University: Quan Zhang et al, Bioinspired zero-energy thermal-management device based on visible and infrared thermochromism for all-season energy saving, Proceedings of the National Academy of Sciences (2022). DOI: 10.1073/pnas.2207353119


Inexpensive device that can harvest energy from a light breeze and store it as electricity
Oct 2022, phys.org
 
When exposed to winds with a velocity as low as 2 meters per second (about 5 mph), the device can produce a voltage of three volts and generate electricity power of up to 290 microwatts, which is sufficient to power a commercial sensor device and for it to also send the data to a mobile phone or a computer. The device can easily be mounted on the sides of buildings.

via Nanyang Technological University, Singapore: Chaoyang Zhao et al, A cantilever-type vibro-impact triboelectric energy harvester for wind energy harvesting, Mechanical Systems and Signal Processing (2022). DOI: 10.1016/j.ymssp.2022.109185


Dancers' moves help to power Glasgow music venue
Oct 2022, BBC News

Glasgow arts venue SWG3 has switched on a system that creates renewable energy from the body heat on its dancefloor.

Dancers' heat is piped via a carrier fluid to 200m (650ft) bore holes that can be charged like a thermal battery.

The energy then travels back to the heat pumps, is upgraded to a suitable temperature and emitted back into SWG3.

The owners say this will enable them to completely disconnect the venue's gas boilers, reducing its carbon emissions by about 70 tonnes of CO2 a year.

"When you start dancing, medium pace, to the Rolling Stones or something, you might be generating 250W.

"But if you've got a big DJ, absolutely slamming basslines and making everyone jump up and down, you could be generating 500-600W of thermal energy."


Friday, September 9, 2022

Quantum Update


Quantum physics in proteins - AI affords unprecedented insights into how biomolecules work
Nov 2021, phys.org

I hear the quantum biology headlines humming.

via Deutsches Elektronen-Synchrotron: Abbas Ourmazd, Few-fs resolution of a photoactive protein traversing a conical intersection, Nature (2021). DOI: 10.1038/s41586-021-04050-9



Physicists create compressible optical quantum gas
Mar 2022, phys.org

Calling BECs (Bose-Einstein Condensate) a "super photon" by the way.

via University of Bonn: Erik Busley et al, Compressibility and the equation of state of an optical quantum gas in a box, Science (2022). DOI: 10.1126/science.abm2543.


Physicists report on first programmable quantum sensor
Mar 2022, phys.org

"In the development of quantum computers, we have learned to create tailored entangled states." 
("Custom Quantum", am I right?)

via University of Innsbruck: Christian Marciniak, Optimal metrology with programmable quantum sensors, Nature (2022). DOI: 10.1038/s41586-022-04435-4.

Also: Quantum Variational Optimization of Ramsey Interferometry and Atomic Clocks, Physical Review X (2021). DOI: 10.1103/PhysRevX.11.041045.


Chinese team breaks distance record for quantum secure direct communication
Apr 2022, phys.org

Distance of 102.2 km.
Prior to this new effort, the record was just 18 km.

via Tsinghua University in China: Haoran Zhang et al, Realization of quantum secure direct communication over 100 km fiber with time-bin and phase quantum states, Light: Science & Applications (2022). DOI: 10.1038/s41377-022-00769-w

Tying Quantum Knots - TU Delft - 2022

It takes three to tangle: Long-range quantum entanglement needs three-way interaction
May 2022, phys.org

The researchers' findings are consistent with previous observations that long-range entanglement survives at a non-zero temperature only when more than three subsystems are involved.

via RIKEN: Tomotaka Kuwahara et al, Exponential Clustering of Bipartite Quantum Entanglement at Arbitrary Temperatures, Physical Review X (2022). DOI: 10.1103/PhysRevX.12.021022


Tunable quantum traps for excitons
May 2022, phys.org

Physicists can now string together many such trapped excitons and adjust them in such a way that they emit photons having exactly the same properties. "That would allow one to create identical single photon sources for quantum information processing," 

via ETH Zurich: Deepankur Thureja et al, Electrically tunable quantum confinement of neutral excitons, Nature (2022). DOI: 10.1038/s41586-022-04634-z


Scientists use quantum computers to simulate quantum materials
May 2022, phys.org

"Computational Materials" sounds like another way of saying "active matter"?

Also "Hardware Noise":
Performing calculations of the properties of materials and molecules on quantum computers faces a problem that one does not experience with a classical computer, a phenomenon known as hardware noise. Noisy calculations return slightly different answers each time a calculation is performed; a noisy addition operation might return values slightly different from 4 each time for the question, "What is 2 plus 2?"

via Argonne National Laboratory's Midwest Integrated Center for Computational Materials and University of Chicago: Benchen Huang et al, Simulating the Electronic Structure of Spin Defects on Quantum Computers, PRX Quantum (2022). DOI: 10.1103/PRXQuantum.3.010339


Researchers achieve record entanglement of quantum memories
Jul 2022, phys.org

Again with the "quantum memories" term:
Researchers coupled two atomic quantum memories using two optically trapped rubidium atoms in two laboratories on the LMU campus connected via a 700-meter-long fiber optic cable.

via Ludwig Maximilian University of Munich: Tim van Leent et al, Entangling single atoms over 33 km telecom fibre, Nature (2022). DOI: 10.1038/s41586-022-04764-4


Scientists invent 'quantum flute' that can make particles of light move together
Jul 2022, phys.org

Ah yes, the quantum flute, we've been waiting for that one.

via University of Chicago: Srivatsan Chakram et al, Seamless High- Q Microwave Cavities for Multimode Circuit Quantum Electrodynamics, Physical Review Letters (2021). DOI: 10.1103/PhysRevLett.127.107701


Strange new phase of matter created in quantum computer acts like it has two time dimensions
Jul 2022, phys.org

First, the time thing:
By shining a laser pulse sequence inspired by the Fibonacci numbers at atoms inside a quantum computer, physicists have created a remarkable, never-before-seen phase of matter. The phase has the benefits of two time dimensions despite there still being only one singular flow of time, the physicists report July 20 in Nature.

Information stored in the phase is far more protected against errors than with alternative setups currently used in quantum computers. As a result, the information can exist without getting garbled for much longer, an important milestone for making quantum computing viable, says study lead author Philipp Dumitrescu.

The approach's use of an "extra" time dimension "is a completely different way of thinking about phases of matter."

Next, never seen this phrasing til now:
"stayed quantum"

via Simons Foundation: Philipp Dumitrescu, Dynamical topological phase realized in a trapped-ion quantum simulator, Nature (2022). DOI: 10.1038/s41586-022-04853-4


Researchers explore a new connection between topology and quantum entanglement
Aug 2022, phys.org

"Our work ties two big ideas together," says Charles Kane, the Christopher H. Browne Distinguished Professor of Physics in Penn's School of Arts & Sciences. "It's a conceptual link between topology, which is a way of characterizing the universal features that quantum states have, and entanglement, which is a way in which quantum states can exhibit non-local correlations, where something that happens in one point in space is correlated with something that happens in another part in space. What we've found is a situation where those concepts are tightly intertwined."
The eureka, and one of the pandemic sort:
The seed for exploring this connection came during the long hours Kane spent in his home office during the pandemic, pondering new ideas. One train of thought had him envisioning the classic textbook image of the Fermi surface of copper, which represents the metal's potential electron energies. It's a picture every physics student sees, and one with which Kane was highly familiar.

"Of course, I learned about that picture back in the 1980s but had never thought about it as describing a topological surface," Kane says. ...

via University of Pennsylvania: Pok Man Tam et al, Topological Multipartite Entanglement in a Fermi Liquid, Physical Review X (2022). DOI: 10.1103/PhysRevX.12.031022


Unexpected quantum effects in natural double-layer graphene
Aug 2022, phys.org

Again with the unexpected:
At temperatures just above absolute zero of minus 273.15 degrees Celsius, the electrons in the graphene can interact with each other—and a variety of complex quantum phases emerge completely unexpectedly. 

via University of Göttingen and University of Texas at Dallas: Anna M. Seiler et al, Quantum cascade of correlated phases in trigonally warped bilayer graphene, Nature (2022). DOI: 10.1038/s41586-022-04937-1


Post Script on the Sub- and Super-Luminal:
Listen to this guy Andrzej Dragan  talk about the "Quantum principle of relativity" at the Centrum Fizyki Teoretycznej, 2020-05-20

(the visuals come in at 19:40)