Showing posts with label quantums. Show all posts
Showing posts with label quantums. Show all posts

Sunday, August 4, 2024

Paradigms Afoot


AKA To Kuhn the Universe

Yes this is old news, but it's a big deal so it can't be ignored. The first article is like the basis of teleportation, where we make molecules dance from a million miles away, but instantly. The second article is about how the paradigm that's scripted science fo the past 300 hundred years or so (gravity and classical physics) is collapsing... "Shifting" if you prefer your revolutions to sound less hyperbolic. 

Physicists 'entangle' individual molecules for the first time, hastening possibilities for quantum computing
Dec 2023, phys.org

They first picked a molecular species that is both polar and can be cooled with lasers. Individual molecules were then picked up with optical tweezers. Next, they encoded a qubit into a non-rotating and rotating state of the molecule. Then they used microwave pulses to make individual molecules interact with one another. Then they implement a two-qubit gate that entangled two molecules.

via Princeton: Connor M. Holland et al, On-demand entanglement of molecules in a reconfigurable optical tweezer array, Science (2023). DOI: 10.1126/science.adf4272.

Also: Yicheng Bao et al, Dipolar spin-exchange and entanglement between molecules in an optical tweezer array, Science (2023). DOI: 10.1126/science.adf8999.

Also: Augusto Smerzi et al, Entanglement with tweezed molecules, Science (2023). DOI: 10.1126/science.adl4179.


 
Scientists closer to finding quantum gravity theory after measuring gravity on microscopic level
Feb 2024, phys.org

Scientists  have successfully detected a weak gravitational pull on a tiny particle using superconducting traps and levitating magnets to detect a weak gravitational pull of 30aN, on a tiny particle measuring 0.43mg, and at a hundredth of a degree above absolute zero.

via University of Southampton and Leiden University in the Netherlands: Tim Fuchs et al, Measuring gravity with milligram levitated masses, Science Advances (2024). DOI: 10.1126/sciadv.adk2949. 


New research suggests that our universe has no dark matter
Mar 2024, phys.org

Rajendra Gupta, a physics professor at the Faculty of Science, used a combination of the covarying coupling constants (CCC) and "tired light" (TL) theories (the CCC+TL model) to reach this conclusion.

This model combines two ideas—about how the forces of nature decrease over cosmic time and about light losing energy when it travels a long distance. It's been tested and has been shown to match up with several observations, such as about how galaxies are spread out and how light from the early universe has evolved.

This discovery challenges the prevailing understanding of the universe, which suggests that roughly 27% of it is composed of dark matter and less than 5% of ordinary matter, remaining being the dark energy.

"In standard cosmology, the accelerated expansion of the universe is said to be caused by dark energy but is in fact due to the weakening forces of nature as it expands, not due to dark energy."

via University of Ottawa: Rajendra P. Gupta, Testing CCC+TL Cosmology with Observed Baryon Acoustic Oscillation Features, The Astrophysical Journal (2024). DOI: 10.3847/1538-4357/ad1bc6


Wednesday, July 17, 2024

Topological Knot Gobbler


Watching two squirrels chase each other up, down, and all around a tree, a revelation came to me - why would we expect the "spatial organization" part of the brain to be limited to two-dimensional hexagonal tiles? These animals spend most of their time running around on trees, not on the ground. Their world is not flat. Their "surface" is a constantly curving tree trunk. Insects, same thing. For them, the basis of spatial dimension is not a flat plane, it's a curved plane. Up, down, and gravity in general are not constants. The default is a curved surface, not the other way around. And that's the more flexible model of the two, so why wouldn't it be the base model?

The idea that the spatial-brain is 2-D is a very human-based bias. It shouldn't be hard to accept the fact that not long after the hexagonal grid brain model was confirmed ("grid cells" 2005), the hyperdimensional toroid model came on the scene (2022). In other words, the brain thinks the landscape is a toroid. 

What's happening in the rapid upheaval of our understanding of space (quantum gravity, Moiré lattices etc.) might be less disorienting if we considered this. I'm not sure how we do this, re-wiring our brains to perform in topological space, but I bet psychedelic mushrooms would help. Or DMT:
The Hyperbolic Geometry of DMT Experiences at the Harvard Science of Psychedelics Club in the year 2020, with Andrés Gómez Emilsson from the Qualia Research Institute

And finally, aside from the spatial implications, topology seems to be a fertile area of study for discoveries on the nature of all things quantum, as seen below. 



Team discovers thousands of new transformable knots
Sep 2023, phys.org

They discovered thousands of new transformable knots including three novel shapes that the humble figure-eight knot can assume, doubling the number documented to date in scientific literature.

via EPFL Ecole Polytechnique Federale de Lausanne Geometric Computing Laboratory: Michele Vidulis et al, Computational Exploration of Multistable Elastic Knots, ACM Transactions on Graphics (2023). DOI: 10.1145/3592399


Molecular knots, left and right: How molecules form knots
Oct 2023, phys.org

They created a computational model for molecular knots, and mostly for optical topology.

via Max Planck Institute for Polymer Research in Mainz, Germany: Yani Zhao et al, Can Polymer Helicity Affect Topological Chirality of Polymer Knots?, ACS Macro Letters (2023). DOI: 10.1021/acsmacrolett.2c00600


Topologically structured light detects the position of nano-objects with atomic resolution
May 2023, phys.org

Just superoscillatory light, optical metrology, and topologically structured light.

via University of Southampton and Nanyang Technological University: Tongjun Liu et al, Picophotonic localization metrology beyond thermal fluctuations, Nature Materials (2023). DOI: 10.1038/s41563-023-01543-y


Researchers demonstrate that quantum entanglement and topology are inextricably linked
Jan 2024, phys.org

Skyrmion topology to be specific:

"We achieved this experimental milestone by entangling two identical photons and customizing their shared wave-function in such a way that their topology or structure becomes apparent only when the photons are treated as a unified entity" 

In the realm of condensed matter physics, skyrmions are highly regarded for their stability and noise resistance. 

"Our work presents a paradigm shift: the topology that has traditionally been thought to exist in a single and local configuration is now nonlocal or shared between spatially separated entities" says Ornelas.

Expanding on this concept, the researchers utilize topology as a framework to classify or distinguish entangled states. They envisage that "this fresh perspective can serve as a labeling system for entangled states, akin to an alphabet," says Dr. Isaac Nape, a co-investigator.

via Structured Light Laboratory in the School of Physics at the University of the Witwatersrand in South Africa, string theorist Robert de Mello Koch from Huzhou University in China, previously from Wits University: Pedro Ornelas et al, Non-local skyrmions as topologically resilient quantum entangled states of light, Nature Photonics (2024). DOI: 10.1038/s41566-023-01360-4

AI Art - Pink Healthy Ovary - 2024

Quantum physicists develop robust and ultra-sensitive topological quantum device
Jan 2024, phys.org

They were the first to realize the topological skin effect on a microscopic scale in a semiconductor material. This quantum phenomenon was initially demonstrated at a macroscopic level three years ago—but only in an artificial metamaterial, not a natural one. This is therefore the first time that a tiny, semiconductor-based topological quantum device that's both highly robust and ultra-sensitive has been developed.

via Würzburg-Dresdner Exzellenzcluster for Complexity and Topology in Quantum Matter: Kyrylo Ochkan et al, Non-Hermitian topology in a multi-terminal quantum Hall device, Nature Physics (2024). DOI: 10.1038/s41567-023-02337-4


Classifying quantum secrets: Pendulum experiment reveals insights into topological materials
Mar 2024, phys.org

Interesting analog (quantum analog)

They built an array of 50 coupled pendula, with string lengths that slightly varied from one pendulum to the other. The strings of each neighboring pair of pendula were connected at a controlled height, such that each one's motion would affect its neighbors' motion.

The system obeyed Newton's laws of motion, but the precise lengths of the pendula and the connections between them created a magical phenomenon: Newton's laws caused the wave of the pendula's motion to approximately obey Schrödinger's equation. Therefore, the motion of the pendula, which is visible in the macroscopic world, reproduces the behaviors of electrons in periodic systems such as crystals.

via the Nuclear Research Center, Department of Biomedical Engineering, School of Mechanical Engineering, and School of Physics and Astronomy at Tel Aviv University: Izhar Neder et al, Bloch oscillations, Landau–Zener transition, and topological phase evolution in an array of coupled pendula, Proceedings of the Nation


'Tube map' around planets and moons made possible by knot theory
Apr 2024, phys.org

Knot Theory

In recent decades, space missions have increasingly relied on the ability to change the course of a satellite's path through space without using fuel by finding 'heteroclinic connections', usually calculated by using vast computing power to churn through one option after another or by making an 'intelligent guess' and then investigating it further. A new technique uses an area of math called knot theory to quickly generate rough trajectories.

via University of Surrey: Danny Owen et al, Applications of knot theory to the detection of heteroclinic connections between quasi-periodic orbits, Astrodynamics (2024). DOI: 10.1007/s42064-024-0201-0


Wednesday, July 10, 2024

No Randomness Like Quantum Randomness


It sounds like an exaggeration, but random number generators (RNGs) run the world. Modern electronic telecomunications don't exist without it, and neither does any form of artificial generation, from pictures to text to video games. Chances are you don't understand it at all, and neither does anyone you know. Lots of people act like they know, like the kinds of people who "predict" the stock market, or lotto numbers. But if you think RNGs are beyond your capacity, give up now, because we're already using quantum RNGs, or QRNGs, and this first article below is like reading another language, while still reading English, a favorite past-time here at Network Address.


Quantum random number generator operates securely and independently of source devices
May 2023, phys.org

Source-device-independent (source-DI) quantum random number generators (QRNGs) -- The random numbers are extracted by a process that measures the arrival time of a photon from a pair of time–energy entangled photons. The time–energy entangled photon pairs are produced from a spontaneous parametric down conversion (SPDC) process.

The researchers were able to confirm the security of the scheme by certifying the time–energy entanglement though observation of nonlocal dispersion cancelation. To improve security, they employ a modified entropic uncertainty relation to quantify the randomness, taking into account a well-recognized problem of finite measurement range.

via SPIE International Society for Optics and Photonics, Nanjing University: Ji-Ning Zhang et al, Realization of a source-device-independent quantum random number generator secured by nonlocal dispersion cancellation, Advanced Photonics (2023). DOI: 10.1117/1.AP.5.3.036003

Image credit: Illustration of the uncertainty of Earth's orbit 56 million years ago due to a potential past passage of the Sun-like star HD7977 2.8 million years ago - Nathan A Kaib at Planetary Science Institute - Feb 2024 https://phys.org/news/2024-02-stars-orbital-evolution-earth-planets.html


Better cybersecurity with quantum random number generation based on a perovskite light emitting diode
Sep 2023, phys.org

Probably the worst science article I ever read but QRNGs; Perovskite LED (PeLED) QRNGs.

via Linköping University: Joakim Argillander et al, Quantum random number generation based on a perovskite light emitting diode, Communications Physics (2023). DOI: 10.1038/s42005-023-01280-3


Further Reading on Random Number Generators:
Random Instantiation Generator, 2021
Reality Engines, 2023

Required Reading - Understanding Randomness by way of Slot Machines and Gambling:
Electronic Drugs and Addiction by Design

And on Procedural Generation, one of the more interesting contemporary applications of RNGs:
No Man's Game, 2022


Thursday, January 4, 2024

The Fractal Frontier


How chaos theory mediates between quantum theory and thermodynamics
Dec 2022, phys.org

Sounds important, not sure I understand:

When a large number of quantum particles are in play at the same time, the equations of quantum theory become so complicated that even the best supercomputers in the world have no chance of solving them [and therefore we can't get temperature from quantum particles, only classical ones]. 

Only where chaos prevails do the well-known rules of thermodynamics follow from quantum physics [according to their super-simulations].

[They describe a system as behaving "quantum chaotically".]

This is one of the first cases in which the interplay between three important theories has been rigorously demonstrated by many-particle computer simulations: quantum theory, thermodynamics and chaos theory.

via Institute of Theoretical Physics at Vienna University of Technology: Mahdi Kourehpaz et al, Canonical Density Matrices from Eigenstates of Mixed Systems, Entropy (2022). DOI: 10.3390/e24121740


Researchers discover superconductive images are actually 3D and disorder-driven fractals
May 2023, phys.org

"Electronic fractals" it's being called. And I guess we already know this: "Advancements with superconductivity hinge on advances in quantum materials. When electrons inside of quantum materials undergo a phase transition, the electrons can form intricate patterns, such as fractals."

But now, with better, higher resolution imaging, they see that the fractals are not just on the surface, but indeed 3-dimensional, so the entire crystal is made of them.

Sudden implication: "Correlation length -- the distance over which the nematic order maintains coherence -- is larger than the field of view of the experiment" (because you know fractals are fractional dimensions that seem to "steal" space from the higher dimension).

In case you were wondering: Superconductor Bi2-xPbzSr2-yLayCuO6+x (BSCO), that's it's name.

via Purdue, Harvard, University of Illinois at Urbana-Champaign, and Penn State: Can-Li Song et al, Critical nematic correlations throughout the superconducting doping range in Bi2-xPbzSr2-yLayCuO6+x, Nature Communications (2023). DOI: 10.1038/s41467-023-38249-3


The brain's ability to perceive space expands like the universe
Jan 2023, phys.org

Salk scientists have discovered that time spent exploring an environment causes neural representations to grow in surprising ways.

Neurons in the hippocampus essential for spatial navigation, memory, and planning represent space in a manner that conforms to a nonlinear hyperbolic geometry—a three-dimensional expanse that grows outward exponentially.

The size of that space grows with time spent in a place, increasing in a logarithmic fashion that matches the maximal possible increase in information being processed by the brain.

via the Salk Institute: Huanqiu Zhang et al, Hippocampal spatial representations exhibit a hyperbolic geometry that expands with experience, Nature Neuroscience (2022). DOI: 10.1038/s41593-022-01212-4

See also: New research finds that collective neural activity is shaped like the surface of a doughnut via Norwegian University of Science and Technology's Kavli Institute for Systems Neuroscience: Richard J. Gardner et al, Toroidal topology of population activity in grid cells, Nature (2022). DOI: 10.1038/s41586-021-04268-7

And: New method to determine the dimensionality of complex networks through hyperbolic geometry via University of Barcelona: Pedro Almagro et al, Detecting the ultra low dimensionality of real networks, Nature Communications (2022). DOI: 10.1038/s41467-022-33685-z

An artistic depiction of a wave encountering an exponentially curved spacetime - Matias Koivurova, University of Eastern Finland - 2023

Fractons as information storage: Not yet tangible, but close
May 2023, phys.org

Fuck is a fracton come on man (we're copying most of the article here, dense stuff)

Fractons are fractions of spin excitations and are not allowed to possess kinetic energy. As a consequence, they are completely stationary and immobile. This makes fractons new candidates for perfectly secure information storage. Especially since they can be moved under special conditions, namely piggyback on another quasiparticle.

"Fractons have emerged from a mathematical extension of quantum electrodynamics, in which electric fields are treated not as vectors but as tensors -- completely detached from real materials" 

In order to be able to observe fractons experimentally in the future, it is necessary to find model systems that are as simple as possible: Therefore, octahedral crystal structures with antiferromagnetically interacting corner atoms were modeled first. 

(Obviously)

...included quantum fluctuations in the calculation of this octahedral solid-state system for the first time, and see they do not enhance the visibility of fractons, but on the contrary, completely blur them, even at absolute zero temperature

via Helmholtz Association of German Research Centres, Indian Institute of Technology in Chennai: Nils Niggemann et al, Quantum Effects on Unconventional Pinch Point Singularities, Physical Review Letters (2023). DOI: 10.1103/PhysRevLett.130.196601


Punctuation in literature of major languages is intriguingly mathematical
Apr 2023, phys.org

First, can someone just tell me how an institute of nuclear physics started doing research on punctuation usage?

Punctuation turns out to be a universal and indispensable complement to the mathematical perfection of every language studied.

Thanks. 

And this isn't their first study on the topic:

"The present analyses are an extension of our earlier results on the multifractal features of sentence length variation in works of world literature. After all, what is sentence length? It is nothing more than the distance to the next specific punctuation mark— the full stop. So now we have taken all punctuation marks under a statistical magnifying glass, and we have also looked at what happens to punctuation during translation," 

The attention of the Cracow researchers was primarily drawn to the statistical distribution of the distance between consecutive punctuation marks. It soon became evident that in all the languages studied, it was best described by one of the precisely defined variants of the Weibull distribution.

The Weibull distribution is usually used to describe survival phenomena (e.g. population as a function of age), but also various physical processes, such as increasing fatigue of materials.

Further findings:

The language characterized by the lowest propensity to use punctuation is English, with Spanish not far behind; Slavic languages proved to be the most punctuation-dependent. German proved to be the exception. Its hazard function is the only one that intersects most of the curves constructed for the other languages. German punctuation thus seems to combine the punctuation features of many languages, making it a kind of Esperanto punctuation. Also, the language most faithfully transforming punctuation from the original language to the target language turned out to be German.

And here is just a great explanation of the mathematical constraints on language:

"Creating a sentence by adding one word after another while ensuring that the message is clear and unambiguous is a bit like tightening the string of a bow: it is easy at first, but becomes more demanding with each passing moment. If there are no ordering elements in the text (and this is the role of punctuation), the difficulty of interpretation increases as the string of words lengthens. A bow that is too tight can break, and a sentence that is too long can become unintelligible. Therefore, the author is faced with the necessity of 'freeing the arrow', i.e. closing a passage of text with some sort of punctuation mark. This observation applies to all the languages analyzed, so we are dealing with what could be called a linguistic law," states Dr. Tomasz Stanisz (IFJ PAN), first author of the article in question.

Also: The Journal of Chaos, Solitons and Fractals 

via The Henryk Niewodniczanski Institute of Nuclear Physics Polish Academy of Sciences: Tomasz Stanisz et al, Universal versus system-specific features of punctuation usage patterns in major Western languages, Chaos, Solitons & Fractals (2023). DOI: 10.1016/j.chaos.2023.113183

Image credit: AI Art - Ouroboros - 2023

Harnessing chaos - Simulation experiment demonstrates way to mitigate extreme weather events
Jun 2023, phys.org

Is this even real? This is the most sci fi shit I've ever heard. Diabolical, and if it wasn't from RIKEN, I wouldn't even post it; it was also part of a national competition in Japan:

RIKEN scientists have demonstrated a way to make small tweaks in weather systems as a means to prevent, or at least reduce, the severity of extreme weather events such as torrential rain. They did this by taking advantage of the chaos that is inherent to such systems. Through this work they hope to develop ways to prevent extreme weather events, which have become more common in recent years.

His group took on this challenge as part of the Japanese government's moonshot-millennia program, and in previously published work, they described the possibility of controlling weather by initiating small changes in it as it forms. At that time, they used the simple Lorenz 63 weather model, which only has a few variables, and showed that it would be possible to induce small perturbations in the system to keep it on one side of a so-called "butterfly pattern." (I don't know why they're not calling it the butterfly effect)

Their new study published in Nonlinear Processes in Geophysics goes beyond the simple model. In it, the team adopted the Lorenz 96 model. Essentially, it sets a weather variable for 40 points along a line of latitude around the Earth, and looks at how each of these points changes as it interacts with neighboring points throughout the year. Approximately once or twice a year, the points show large variations, which correspond to extreme weather events. As part of a control simulation experiment, the members of the team were able to eliminate the extreme events by making small tweaks in a 100-year run of the model.

The control simulation experiment essentially took advantage of the chaotic nature of the system; small perturbations—which might for example involve making centimeter/second changes in wind speed to prevent a typhoon with winds that are many times more powerful—done strategically ahead of time could prevent the system from entering an undesired area, meaning that they could stop extreme events from happening.

via RIKEN: Qiwen Sun et al, Control simulation experiments of extreme events with the Lorenz-96 model, Nonlinear Processes in Geophysics (2023). DOI: 10.5194/npg-30-117-2023

Tuesday, November 1, 2022

Fractals in the News


It's fractals all the way down -- if you've been waiting for fractals to have their moment, that time is coming. It took the advent of computers for us to discover fractals in the first place, but then it was used for video game graphics and psychedelic art, and that's it for about 40 years. Now we're using the Large Hadron Collider, the most advanced piece of scientific equipment created, to discover that fractals are not only found in all living things, but in the furthest depths of physics - the Bose Einstein Condensate (BECs are an integral part of quantum computing, metamaterials and intelligent matter, and will be a key technology in the future). 


Study proposes mathematical tool to help understand fractal structure of quark-gluon plasma
Jun 2022, phys.org

When hadrons are accelerated to relativistic velocities and made to collide with each other their confinement is interrupted and the quarks and gluons scatter, forming a plasma that lasts only a tiny fraction of a second, but observation of it has produced important discoveries about the nature of material reality.

Quark-gluon plasma has a fractal structure. When it disintegrates into a stream of particles propagating in various directions, the behavior of the particles in the jets is similar to that of the quarks and gluons in the plasma. Moreover, it decays in a cascade of reactions with a pattern of self-similarity over many scales that is typical of fractals.

"Fractal theory explains BEC formation"

Deppman questions whether fractal structures could also be present in electromagnetism. This would explain why so many natural phenomena, from lightning to snowflakes, have fractal structures, as they are all governed by electromagnetic forces. It might also explain why Tsallis statistics are present in so many phenomena. "Tsallis statistics have been used to describe scale transformation invariance, a key ingredient of fractals," he said.

via Large Hadron Collider by the European Organization for Nuclear Research-research: E. Megías et al, Nonlinear Klein–Gordon equation and the Bose–Einstein condensation, The European Physical Journal Plus (2022). DOI: 10.1140/epjp/s13360-022-02511-2

Post Script:
Creating an ultrafast optoelectronic switch using a Bose-Einstein condensate of polaritons
Sep 2022, phys.org

Terahertz polariton switch.

via Universities in Shanghai, Xiamen, Shandong, Nanjing, Shanxi and NYU: Fei Chen et al, Optically Controlled Femtosecond Polariton Switch at Room Temperature, Physical Review Letters (2022). DOI: 10.1103/PhysRevLett.129.057402


Wednesday, October 26, 2022

Lexical Projections


Lattice distortion of perovskite quantum dots induces coherent quantum beating
Sep 2022, phys.org

Quantum beating - Using ensemble-level femtosecond polarized transient absorption, the researchers observed clear bright-exciton fine structure splitting in solution-processed CsPbI3 perovskite quantum dots, which is manifested as exciton quantum beats (periodic oscillations of kinetic traces).

via Chinese Academy of Sciences: Yaoyao Han et al, Lattice distortion inducing exciton splitting and coherent quantum beating in CsPbI3 perovskite quantum dots, Nature Materials (2022). DOI: 10.1038/s41563-022-01349-4



TypoSwype: An image recognition tool to detect typosquatting attacks
Oct 2022, phys.org

Typosquatting - exploits the human tendency to misspell words when typing quickly or to misread words when they have small topographical errors, like google-goigle or facebook-fqcebook

via Ensign InfoSecurity in Singapore: Joon Sern Lee, Yam Gui Peng David, TypoSwype: An imaging approach to detect typo-squatting. arXiv:2209.00783v1 [cs.CR], arxiv.org/abs/2209.00783


The polypill could help with avoiding millions of premature deaths, heart attacks and strokes every year
Oct 2022, phys.org

Polypill - one pill that does a few different things all at once 

via McMaster University: Salim Yusuf et al, The polypill: from concept and evidence to implementation, The Lancet (2022). DOI: 10.1016/S0140-6736(22)01847-5


Tuesday, September 20, 2022

Tell You What


Studying schizophrenia in plants? Researchers are giving it a shot
Jun 2022, phys.org

"Schizophrenic-like plant"

via Yale: Alexandra Ralevski et al, Plant mitochondrial FMT and its mammalian homolog CLUH controls development and behavior in Arabidopsis and locomotion in mice, Cellular and Molecular Life Sciences (2022). DOI: 10.1007/s00018-022-04382-3


New laser breakthrough to help understanding of gravitational waves
Jun 2022, phys.org

"Metasurfaces" and "Eigenmodes"

via University of Western Australia Centre of Excellence for Gravitational Wave Discovery: Metasurface Enhanced Spatial Mode Decomposition, arXiv:2109.04663v2 [physics.optics] arxiv.org/abs/2109.04663

Also: Aaron W. Jones et al, Metasurface-enhanced spatial mode decomposition, Physical Review A (2022). DOI: 10.1103/PhysRevA.105.053523


Amazon employees say the company cracked down on union organizing following Amazon Labor Union victory
Jun 14 2022, The Washington Post [soft paywall]

"Aggressively avoiding"

Amazon fired warehouse worker Rakyle Johnson, a member of Amazonians United who alleged in a labor board filing earlier this month that Amazon fired him because he “joined or supported a labor organization.” Amazon’s Nantel disputed those allegations, saying Desatnik was terminated for aggressively avoiding a security screening...


Study finds toxicity in the open-source community varies from other internet forums
Jul 2022, phys.org

"Politeness Detector"

via Institute for Software Research in Carnegie Mellon University's School of Computer Science, and Wesleyan: "Did You Miss My Comment or What?" Understanding Toxicity in Open Source Discussions, Courtney Miller et al, International Conference on Software Engineering, May 2022. 


World's first self-calibrated photonic chip: An interchange for optical data superhighways
Jul 2022, phys.org

Some things aren't exactly new or novel I just like the way they sound together:

"self-calibrating optical microcomb chip"

via Monash University: Xingyuan Xu et al, Self-calibrating programmable photonic integrated circuits, Nature Photonics (2022). DOI: 10.1038/s41566-022-01020-z


Overconfidence bolsters anti-scientific views, study finds
Jul 2022, phys.org

"Anti-consensus"

via Portland State University: Nicholas Light et al, Knowledge overconfidence is associated with anti-consensus views on controversial scientific issues, Science Advances (2022). DOI: 10.1126/sciadv.abo0038


Neural networks and 'ghost' electrons accurately reconstruct behavior of quantum systems
Aug 2022, phys.org

Just here for the ghost electrons.

via Simons Foundation: Javier Robledo Moreno et al, Fermionic wave functions from neural-network constrained hidden states, Proceedings of the National Academy of Sciences (2022). DOI: 10.1073/pnas.2122059119


Public database of standardized linguistic features
Jun 2022, phys.org

Words in general:

It's called Lexibank, like GenBank for sequenced genomes, but for languages; it's a standardized wordlist for more than 2,000 languages. "We decided to create our own standards, called Cross-Linguistic Data Formats, which have now been used successfully in a multitude of projects in which our department is involved."

"Thanks to our standardized representation of language data, it is now easy to check how many languages use words like 'mama' and 'papa' for 'mother' and 'father,'" reports List. "It turns out that this pattern can indeed be found in many languages of the world and in very different regions," adds Simon J. Greenhill, one of the founders of the Lexibank project. "Since all the languages with this pattern are not closely related to each other, it reflects independent parallel evolution, just as the great linguist Roman Jakobson suggested in 1968."

"When investigating which languages use the same word for 'arm' and 'hand,' we found that these languages typically also use the same word for 'leg' and 'foot,'" List reports. "While this may seem to be a silly coincidence, it shows that the lexicon of human languages is often much more structured than one might assume when investigating one language in isolation."

via Max Planck Society: Lexibank, A public repository of standardized wordlists with computed phonological and lexical features, Scientific Data (2022). DOI: 10.1038/s41597-022-01432-0


Post Script:
One of the silver linings of the early days of the Russian invasion of Ukraine happened when listening to the news describe the Snake Island Go Fuck Yourself story -- since the news can't say things like "go fuck yourself", even if they are quoting someone else, they say instead that the Snake Island soldiers "...told them what to do with themselves...".

There's something special about listening to people talk about something you're explicitly not allowed to talk about, a premium exercise in syntactical engineering. And possibly similar to the Don't Say Gay law, which makes it illegal to say the name of the law that makes it illegal to say the law. ... Golden Braids for Days!


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)

Wednesday, June 16, 2021

On Quantum Updates and the Photon Revolution


Quantum things are a big deal these days, but you know what's even more of a big deal? Photons. Just wait, you'll be getting upgraded from the Verizon Quantum plan to the Verizon Photon plan in like 2 years tops. Photons, i.e., light, is the electricity of the 21st century. 

^That image btw: "Stimulated Photon Emission" -- Illustration of a gold-covered probe tip injecting electrons into a carefully located imperfection in an atomically thin material. The energy from each electron causes the highly localized emission of a single photon, which may then be guided to a detector. Credit: Ignacio Gaubert, 2020.

Time-reversal of an unknown quantum state
Aug 2020, phys.org

Stochastic baths, who can say no?
Abstract - In the present work, the scientists propose using a thermodynamic reservoir at finite temperatures to form a high-entropy stochastic bath to thermalize a given quantum system and experimentally increase thermal disorder or entropy in the system. 
-A. V. Lebedev et al. Time-reversal of an unknown quantum state, Communications Physics (2020). DOI: 10.1038/s42005-020-00396-0
-Seth Lloyd et al. Quantum principal component analysis, Nature Physics (2014). DOI: 10.1038/nphys3029
-Gonzalo Manzano et al. Quantum Fluctuation Theorems for Arbitrary Environments: Adiabatic and Nonadiabatic Entropy Production, Physical Review X (2018). DOI: 10.1103/PhysRevX.8.031037
An electrical trigger fires single, identical photons
Oct 2020, phys.org

First time we're seeing "memory" used as an analogy for quantum coherence.

Also, "photons on demand"; wait for it.

via: Bruno Schuler et al, Electrically driven photon emission from individual atomic defects in monolayer WS2, Science Advances (2020). DOI: 10.1126/sciadv.abb5988

Quantum entanglement demonstrated aboard orbiting CubeSat
Jun 2020, phys.org

Quantum computing in outer space.
In a critical step toward creating a global quantum communications network, researchers have generated and detected quantum entanglement onboard a CubeSat nanosatellite weighing less than 2.6 kilograms and orbiting the Earth.
The coldest computers in the world
Aug 2020, BBC News

Also in outer space.

The world's first integrated quantum communication network
Jan 2021, phys.org

Yes they have; via the University of Science and Technology of China.

Using drones to create local quantum networks
Jan 2021, phys.org

This is what it will be like:
A team of researchers affiliated with several institutions in China has used drones to create a prototype of a small airborne quantum network. In their paper published in the journal Physical Review Letters, the researchers describe sending entangled particles from one drone to another and from a drone to the ground.
Robots learn faster with quantum technology
Mar 2021, phys.org
"We are just at the beginning of understanding the possibilities of quantum artificial intelligence" says Philip Walther, head of an international collaboration of experimental physicists, "and thus every new experimental result contributes to the development of this field, which is currently seen as one of the most fertile areas for quantum computing."
Fertile, indeed.

Photon Avalanche, Mikołaj Łukaszewicz at Polish Academy of Sciences, 2021

'Multiplying' light could be key to ultra-powerful optical computers
Feb 2021, phys.org

Using polaritons - which are half-light and half-matter

Heat-free optical switch would enable optical quantum computing chips
Mar 2021, phys.org

Molybdenum disulfide ushers in era of post-silicon photonics
Mar 2021, phys.org

Study suggests that silicon could be a photonics game-changer
Apr 2021, phys.org

In addition to being good for controlling electronic information, silicon is also good for controlling light, which will be integral to quantum computing. 

Discovered by mistake of course:
"Our finding was lucky because we weren't looking for it. We were trying to understand how a very small number of phosphorus atoms in a silicon crystal could be used for making a quantum computer and how to use light beams to control quantum information stored in the phosphorus atoms.

"We were astonished to find that the phosphorus atoms were re-emitting light beams that were almost as bright as the very intense laser we were shining on them. We shelved the data for a couple of years while we thought about proving where the beams were coming from. It's a great example of the way science proceeds by accident, and also how pan-European teams can still work together very effectively."

via University of Surrey: Nils Dessmann et al, Highly efficient THz four-wave mixing in doped silicon, Light: Science & Applications (2021). DOI: 10.1038/s41377-021-00509-6

Wafer-scale production of graphene-based photonic devices
Feb 2021, phys.org

It's here, graphene chips to the rescue.

via Graphene Flagship: Marco A. Giambra et al, Wafer-Scale Integration of Graphene-Based Photonic Devices, ACS Nano (2021). DOI: 10.1021/acsnano.0c09758

Sunday, December 20, 2015

Meta-Atoms and Light-Bits

120-cell_Carlos Sequin

This is about freezing light, mostly so it can be used as memory in photonic computing, which is one of the places we are going with the future of computing, that is, beyond circuits for electric information. The following two articles are just about the ubiquity of quantum mechanical manipulation in increasingly 'normal' circumstances.

[The Rise of Photonics]
Device can theoretically trap a light 'bit' for an infinite amount of time

To overcome light's penchant for escaping, Lannebère and Silveirinha utilized an idea proposed by John von Neumann and Eugene Wigner in 1929, and later extended by others, which has led to the discovery that transparent structures with tailored geometries can perfectly confine light by scattering it in a very specific way.

Lannebère and Silveirinha showed that this strategy for confining light can be achieved by shining light on a spherical "meta-atom," so-named because it allows light to have only a specific quantized energy value (creating a light "bit"), similar to how an atom allows electrons to occupy only certain quantized energy levels.

Quantum entanglement achieved at room temperature in semiconductor wafers
phys.org, Nov 2015
[Room temperature, whatever.]

Physicists mimic quantum entanglement with laser pointer to double data speeds
phys.org, Oct 2015
"While there's no 'spooky action at a distance,' it's amazing that quantum entanglement aspects can be mimicked by something that simple."