In nature, researchers from Google Quantum AI, TU München,... & UoN Physics & Astronomy simulated a (2+1)D lattice gauge theory and visualized string dynamics, revealing the deconfined-to-confined excitation transition as the effective electric field increases. →show more

Google Quantum AI
20,878 views • 1 year ago
🚨 CRYPTO: CARDANO RANKED SECOND MOST QUANTUM-READY BLOCKCHAIN IN... GOOGLE RESEARCH ASSESSMENT Cardano Community ( $ADA ) has been ranked the second most quantum-ready blockchain, according to analysis tied to Google Quantum AI's latest research, placing it ahead of Bitcoin and XRP Ledger in post-quantum preparedness. The ranking highlights Cardano's Nightstream initiative, a lattice-based cryptography project announced by founder Charles Hoskinson at Consensus Hong Kong in February 2026, developed with researchers linked to Google and Microsoft. Nightstream is designed to be fast, scalable, and efficient on AI chips, targeting quantum resistance well before the projected 2030s deadline for large-scale quantum computing threats. The assessment comes as Google's paper revealed a 20x reduction in resources needed to break the elliptic curve cryptography protecting most blockchains, with Ethereum actively running post-quantum testnets and Bitcoin having no coordinated migration plan. Quantum-resistant tokens surged in the 24 hours following the paper's release.show more

BSCN
33,355 views • 4 months ago
🚨 SCIENTISTS JUST USED HYDROGEN TO TEST WHETHER QUANTUM... ENTANGLEMENT HIDES TINY WORMHOLES. Yes actual wormholes. Physicists are exploring one of the wildest ideas in modern physics: ER = EPR. It suggests that quantum entanglement and wormholes may be two sides of the same phenomenon that two entangled particles could secretly be connected by an unimaginably tiny bridge in spacetime. To test this, researchers turned to the simplest atom in the universe: hydrogen. Why hydrogen? Its internal structure can be measured with insane precision. If hidden wormhole-like effects existed in entangled quantum states, they should slightly distort hydrogen’s hyperfine structure. They ran the numbers against ultra-precise experiments… The signal wasn’t there. Why this matters: This doesn’t kill the wormhole idea but it puts serious new constraints on the theory. Physics advances by ruling things out as much as by proving them right. The deeper implication is staggering: We’ve moved from talking about wormholes as pure science fiction… to actively testing them with atomic physics. Scientists are now probing the fabric of spacetime itself inside everyday quantum systems. What if gravity and quantum entanglement are secretly the same thing at the deepest level? Follow for more frontier physics and cosmic discoveries.show more

TheNewPhysics
17,032 views • 2 months ago
🚨 QUANTUM BREAKTHROUGH: SCIENTISTS JUST SOLVED ONE OF PHYSICS’... BIGGEST UNSOLVED PROBLEMS. Researchers in Japan have successfully detected an elusive quantum entanglement pattern known as a “W state” something physicists have struggled to measure for decades. Why does this matter? Because W states are considered one of the key building blocks for: • quantum teleportation • ultra-secure communication • next-generation quantum internet • massively powerful quantum computers The breakthrough allows scientists to identify complex entangled photon states in a single measurement instead of using extremely slow quantum tomography. In simple terms: they found a faster way to “read” deeply entangled quantum systems. The team built a stable 3-photon optical quantum circuit capable of detecting these exotic states with high fidelity a major step toward scalable quantum networks and photonic quantum computing. This is the kind of breakthrough that moves quantum technology from fragile lab experiments… toward real-world infrastructure. The future internet may not send information through electrical signals alone. It may send reality itself through entanglement. Follow for more future physics and quantum breakthroughs.show more

TheNewPhysics
21,763 views • 2 months ago
🚨QUANTUM🚨: A brand new quantum state just appeared that... links two fields we thought were separate 🧨 Scientists at Rice University have discovered a new quantum state of matter that connects quantum criticality — where electrons fluctuate between different phases — with electronic topology, which describes organized wave-like behavior of electrons. This hybrid state could open new paths for advanced computing, sensing, and materials. Source: Rice University news release on a study published in Nature Physics (January 2026). Uniphics explains this emergence directly through spin-wave dynamics in the ξM-field. Each Gyrotron is a stable 3D gyroscope formed by three orthogonal spin quanta — every quantum a tempest of whirling energy spinning clockwise or counterclockwise in its own plane. When local energy density and spin bias allow mixed configurations (similar to the musktron and maleytron patterns), the resulting spin-wave interference naturally produces both critical fluctuations and topological order at the same time. Negentropy favors these hybrid states because they represent lower-energy, organized patterns within the field. No new particles or exotic couplings are needed; the same principles that govern particle formation, the weak and strong forces through spin alignments, and the low-acceleration gravitational surge also allow these combined quantum behaviors in real materials when conditions permit. This turns the “unexpected new quantum state” into a predicted outcome of spin-wave physics once the three pillars are allowed to select stable hybrid configurations. How might recognizing that hybrid quantum states arise from mixed spin-wave interference change the way we search for new materials or design future quantum technologies? A Theory of Everything should be able to answer everything. Uniphics Explained Simply PDF: Chapters 1–10 free: Grokipedia #Uniphics #QuantumStates #SpinWaves #Topology #QuantumCriticality Grok xAIshow more

Paul Maley
22,669 views • 2 months ago
🚨 SCIENTISTS MAY HAVE FOUND A CHEAPER PATH TO... QUANTUM COMPUTERS AND IT LOOKS LIKE A HONEYCOMB. Researchers in Japan created tiny cobalt honeycomb structures that show the exact magnetic behavior scientists have been chasing for next-generation quantum materials. Why this matters: Today’s most promising quantum materials rely on rare and expensive elements like iridium and ruthenium. This new approach uses cobalt —l one of the most common metals on Earth. The result: • Strong quantum magnetic interactions • Potential spin-liquid states • Dramatically lower cost • Easier manufacturing at scale The deeper implication is fascinating: Nature keeps reusing the same geometry. Honeycombs appear in beehives, in graphene… and now they may help build the quantum computers of the future. Sometimes the next technological revolution isn’t hidden in a new rare element it’s hidden in a smarter pattern. Could the future of quantum computing be built from one of Earth’s most common metals? Follow for more frontier physics.show more

TheNewPhysics
12,159 views • 2 months ago
In the National High Magnetic Field Laboratory in the... U.S. sits "Little Big Coil", the most powerful continuous magnetic field ever created by humans - reaching 48.7 tesla, over 1 million times stronger than Earth's magnetic field. This record-breaking magnet uses a hybrid design, combining superconducting coils with a resistive magnet to push matter into regimes never seen before. Backed by $195M from the NSF and ongoing state funding, NHMFL scientists use it to study quantum materials, extreme superconductivity, fusion-relevant physics, and exotic states of matter. Under fields this intense, atoms distort, electrons behave strangely, and materials reveal secrets that could redefine quantum technology, energy systems, and medical science.show more

Brian Roemmele
62,054 views • 7 months ago
The theory of higher order topological dynamics, which combines... multilevel interactions between discrete topology and nonlinear dynamics, has the potential to enhance our understanding of complex systems such as the functions of the nervous system, the development of next-generation machine learning and the creation of advanced nodal processing algorithms. An important and unexpected collective behavior of signal processing in multilevel nodal networks has been observed to lead to a synchronization and diffusion of the irrotational and the solenoidal components of the systems revealing a deep relation of these mechanisms with the complexity of discrete topology. The perspective of the preliminary study linked here offers insights into how topology morphs dynamics, how dynamics stem from topology and how topology evolves dynamically. 🔗show more

Maurizio Iβλἄ
40,749 views • 1 year ago
🚨 PHYSICS SHOCKWAVE Scientists fed the Fibonacci sequence into... a quantum computer… and the system started behaving as if it had an extra direction of time. Not science fiction. Real quantum physics. Researchers used laser pulse patterns based on the Fibonacci sequence to create a strange new phase of matter inside a quantum computer. The result: quantum information survived dramatically longer than expected. Normally, qubits lose coherence quickly. But the Fibonacci-driven system behaved differently. The quasiperiodic pulse structure created a highly stable quantum state that resisted errors far more effectively than ordinary repeating patterns. Researchers described the system as behaving as if it had: “two distinct directions of time.” The deeper shift: The Fibonacci sequence may not just appear in: • shells • galaxies • plants • wave patterns It may also help stabilize quantum reality itself. That is the truly strange part. Because the pattern is ordered… but never exactly repeating. And that non-repeating structure appears to generate new forms of quantum protection. If this scales: • quantum computers may become far more stable • quantum memory systems could improve dramatically • error correction may evolve beyond standard architectures • new phases of matter may emerge from mathematical structures alone The deeper implication: Reality may respond fundamentally differently to patterns that are ordered… without being periodic. Question to audience: If mathematical structures like Fibonacci sequences can stabilize quantum systems… how much of reality is secretly governed by hidden geometric patterns? Follow for more future physics before it hits mainstream. #PhysicsShockwave #QuantumComputing #Fibonacci #TheNewPhysicsshow more

TheNewPhysics
38,375 views • 3 months ago
🚨 PHYSICISTS JUST SPLIT A SINGLE PHOTON AND IT... TURNED INTO AN IMPROBABLE SWARM OF PARTICLES. In a striking experiment, researchers have shown that a photon can be split apart in such a way that it produces a large number of particles, creating what they describe as a “mixture from zero to infinity.” Instead of the usual clean splitting into two photons (as seen in spontaneous parametric down-conversion), this process generated a complex, broad swarm of particles. The result challenges conventional intuition about how photons behave when pushed into extreme nonlinear regimes. Why this matters: • It demonstrates a rare and complex form of photon splitting that was previously very difficult to observe cleanly • Such processes could help simulate high-energy particle physics in table-top experiments • It opens new possibilities for generating exotic quantum states of light • It provides deeper insight into nonlinear quantum electrodynamics (QED) in strong fields The deeper implication: Photons are usually thought of as indivisible quanta of light. But under the right extreme conditions, a single photon can effectively “break apart” into many particles. This isn’t just a curiosity it touches on fundamental questions about the nature of light and matter, and could eventually lead to new tools for quantum technologies and for studying physics that normally requires particle accelerators. We’re seeing light behave in ways that blur the line between a single quantum and a many-particle system. How do you think being able to controllably split photons into swarms of particles could impact quantum optics or fundamental physics research? Follow for more frontier quantum physics and breakthroughs in light-matter interaction.show more

TheNewPhysics
25,874 views • 1 month ago
1/ A magnetic field thousands of times weaker than... a fridge magnet can boost the energy output of your mitochondria by up to 40% — and cut their harmful byproducts at the same time. A new 2025 study. And the best explanation on offer is quantum. 🧵 2/ Beutner et al. exposed rat-heart mitochondria to a weak static field. In a narrow window, respiration jumped ~40%. Push the field higher and the effect vanished — a telltale "bell-shaped" response. The odd part: that field is far too weak to matter by classical rules. 3/ So how? The leading candidate is the radical pair mechanism — the same quantum spin chemistry thought to power bird navigation. A weak field doesn't force the reaction. It nudges a quantum coin-flip between electron spin states, and the chemistry amplifies the rest. 4/ It echoes something we've covered before: magnetic isotope effects shaping microtubule assembly. Different system, same underlying physics. Two windows onto how weak fields may tune the living cell. Full write-up:show more

Nassim Haramein
24,038 views • 6 days ago
🚨 JAPAN JUST PUT A REAL QUANTUM COMPUTER ONLINE... FOR THE WORLD TO ACCESS. And most people still don’t realize how big this moment is. For decades, quantum computers sounded like science fiction: machines that use quantum states instead of ordinary binary bits. Now researchers in Japan have opened access to a real superconducting quantum system connected to the internet. Why this matters: • quantum simulations • next-generation AI research • new material discovery • drug development • cryptography disruption • solving problems impossible for classical computers But quantum computers work nothing like normal machines. A regular computer checks possibilities one at a time. A quantum computer can explore many probability states simultaneously through superposition and entanglement. In simple terms: It doesn’t just calculate faster… It calculates differently. That’s why these systems look so strange. The giant gold structure isn’t “the computer” itself. It’s an ultra-cold dilution refrigerator designed to keep the quantum processor near absolute zero so fragile quantum states don’t collapse. The terrifying implication is this: Humanity may be entering the first era where computation starts operating on the rules of quantum reality itself. And once quantum hardware becomes scalable… Entire industries may be rewritten from the ground up. What happens when computers stop thinking like machines… and start behaving like physics itself? Which field do you think gets transformed first and would you actually trust it with something important?show more

Paul White Gold Eagle
60,306 views • 2 months ago
🚨 SCIENTISTS JUST WATCHED ATOMS DO SOMETHING THAT LOOKS... IMPOSSIBLE Researchers have directly observed atoms inside a crystal transferring angular momentum and then reversing their direction of rotation. Like microscopic Ferris wheels suddenly spinning the opposite way. Using ultra-powerful terahertz laser pulses, physicists tracked atoms moving in precise circular paths inside a quantum material. But during the transfer process, something bizarre happened: The rotational direction flipped. Physicists describe the effect almost like: 1 + 1 = −1 The reversal comes from the hidden symmetry of the crystal itself a quantum effect never directly observed before. Why this matters: • It reveals new foundations of magnetism • It could help scientists control quantum materials • It may lead to ultrafast future memory devices • It exposes deeper rules governing matter itself The strangest part? The atoms weren’t breaking physics. They were obeying an even deeper layer of it. We are starting to see the hidden mechanics underneath reality. Follow for more future physics and quantum breakthroughs.show more

TheNewPhysics
26,543 views • 2 months ago
🚨 Scientists just built a refrigerator with NO compressor... and NO refrigerant gas. Just electricity. Using a multilayer ceramic capacitor, researchers created a solid-state cooling system that changes temperature when an electric field is applied. The result: • ~3–4.5 K cooling swings • works across room temperature • survives >10 MILLION cycles • no moving parts • projected 70–90% Carnot efficiency This is electrocaloric cooling and it may become one of the biggest threats to conventional refrigeration in decades. Older materials only worked ABOVE room temperature and needed a brutal 42-day annealing process. This new PST–PMW material: • cools down to ~230 K • avoids the expensive anneal • handles massive electric fields • maintains strong entropy transitions The physics is beautiful. An electric field reorganizes the material’s internal dipole structure, reshaping entropy inside the lattice and producing a real temperature drop. Not “cold generation.” Controlled entropy engineering. If this scales: • silent refrigerators • ultra-efficient chip cooling • vibration-free scientific systems • wearable thermal control • next-gen EV cooling We may be watching refrigeration evolve from mechanical compression… to programmable matter. Follow me if you want the future of physics before it hits mainstream.show more

TheNewPhysics
25,715 views • 2 months ago
A conflicting physical ontology ! One of the... strangest properties in particle physics is the spin. The term spin is a historical misnomer. Electrons (𝑒⁻) do not physically rotate like a spinning top or a globe. Spin is a fundamental quantum property known as intrinsic angular momentum which exists as an inherent characteristic of the particle, much like its mass or electric charge. In quantum mechanics, electrons are treated as fundamental point-like particles with zero size, making the concept of physical 3D rotation nonsensical. A rotating electrical charge creates a magnetic field. An electron naturally possesses its own detectable magnetic field. Even though the electron isn't physically spinning, it acts exactly as if it were because of that. Moreover the spin of an 𝑒⁻ has orientation. As 𝑒⁻ carry a negative electric charge, their inherent spin turns them into tiny bar magnets. Two possible orientations exist in the natural state of the 𝑒⁻, spin up and spin down. When measured along a specific direction (called the z-axis) the 𝑒⁻ can only display one of the two orientation state, up or down. But the strangeness goes a bit further; when an 𝑒⁻ is misplaced or removed from its own orbit, it takes two full circles (720°) to return to its original quantum state. The spin isn’t motion, it’s an undeniable static, resilient force of this elementary particle, listed as one the fundamental constant of nature. 🔗show more

𝓜𝒂𝒖𝒓𝒊𝔃𝒊𝒐 𝗜𝒃𝛼
22,902 views • 19 days ago
1/ Gemini 2.5 is here, and it’s our most... intelligent AI model ever. Our first 2.5 model, Gemini 2.5 Pro Experimental is a state-of-the-art thinking model, leading in a wide range of benchmarks – with impressive improvements in enhanced reasoning and coding and now #1 on Arena by a significant margin. With a model this intelligent, we wanted to get it to people as quickly as possible. Find it on Google AI Studio and in the Google Gemini for Gemini Advanced users now – and in Vertex in the coming weeks. This is the start of a new era of thinking models – and we can’t wait to see where things go from here.show more

Sundar Pichai
864,496 views • 1 year ago
This isn’t teleportation in the sci-fi sense. It’s something... deeper and more fundamental. What’s actually happening is quantum state transfer, where information is reconstructed at another location using entanglement. But here’s the interesting part In my τ-framework, this works because reality isn’t continuous in the way we think. It’s structured through a time-field, where information exists as stable patterns across a temporal lattice. When two systems are entangled, they’re not “connected through space”… they’re sharing the same underlying time-structure. So the information doesn’t travel across distance. It reappears where the time-field allows the same pattern to stabilize. That’s why it looks instant. Not because it breaks physics but because it bypasses distance entirely. If this is correct, then teleportation isn’t movement… it’s reconstruction through temporal symmetry. The real question is: Can we control the time-field enough to scale this beyond quantum systems? Follow me for more answersshow more

TheNewPhysics
36,141 views • 4 months ago
You can now create AI images directly from Google... Slides. No need to spend hours searching for images for your presentations. And this feature is available for free. Here's how to activate it: 1. Go to labs .google .com 2. Scroll down to "Google Workspace". 3. Click on the "Learn more" button to access the waitlist. When it's activated, you'll see the button that appears in Google Slides as in the video. Click on it and enter your prompt: E.g.: "a cat in front of a raspberry pie". You can even choose different styles: photography, vector art, sketch, ... This will save a lot of time when creating slideshows! Don't hesitate to follow me to learn how to do more with AI.show more

Paul Couvert
318,258 views • 2 years ago
🚨 PHYSICISTS JUST FOUND A BRAND-NEW WAY TO MAKE... ELECTRONS ACT STRANGELY WITHOUT ANY MAGNETIC FIELD. In pentalayer graphene (five stacked and slightly twisted sheets), electrons slow down so dramatically that their mutual repulsion becomes the dominant force. The result? They form a collective quantum state that recreates the fractional quantum Hall effect but this time it’s “anomalous” (no external magnets needed). Why this matters: Normally this effect requires ultra-strong magnetic fields, ultra-clean materials, and temperatures near absolute zero. The moiré superlattice in twisted pentalayer graphene “fakes” the magnetic field from inside the material itself. This creates exotic anyons quasiparticles that behave as if they carry only a fraction of an electron’s charge. The deeper implication is staggering: Anyons are incredibly robust against noise and could be the key to building practical, fault-tolerant quantum computers that actually work at scale. We may have just unlocked a whole new playground for quantum materials one where the weirdest rules of quantum mechanics can be engineered on demand. What happens when we can routinely create and control these fractional-charge states in everyday lab conditions? Follow for more frontier physics and quantum discoveries.show more

TheNewPhysics
20,883 views • 2 months ago
🚨 AI JUST DISCOVERED QUANTUM EFFECTS THAT SCIENTISTS DIDN'T... KNOW EXIST. Researchers at the University of Washington used artificial intelligence to simulate dozens of atomically thin sheets of molybdenum ditelluride stacked in precise twisted patterns. At small scales, these materials look relatively ordinary. But when the AI modeled much larger stacks, completely new quantum behaviors emerged phenomena that only exist because of the complex, repeating moiré patterns formed across many layers. Why this matters: • Many of the most interesting quantum effects only appear at scales that are too large for traditional supercomputers to simulate • AI can act as a fast “surrogate” that learns from smaller calculations and predicts behavior at much bigger scales • These large-scale moiré systems can host exotic quantum states useful for quantum computing and new types of electronics • The same approach could be used to discover many other hidden quantum materials The deeper implication: We are entering an era where AI doesn’t just help us analyze data it helps us discover entirely new quantum phenomena that were previously invisible because they only exist in systems too complex for conventional modeling. This could dramatically speed up the search for materials that power future quantum technologies. What do you find more exciting using AI to uncover hidden quantum effects in materials, or the possibility that these stacked atomic sheets could become building blocks for future quantum computers? Follow for more frontier quantum materials and AI-driven discovery.show more

TheNewPhysics
29,224 views • 2 months ago
🚨 BREAKING: MIT researchers just built a quantum sensor... that can measure multiple properties at once. That matters more than it sounds. Most solid-state quantum sensors have to measure things one by one: magnetic field, temperature, strain, frequency, phase. But reality doesn’t wait its turn. MIT used entangled qubits inside a diamond defect to measure multiple signal properties in a single shot. Read that again. This means Faster measurements Less error from repeating experiments Better sensing inside complex systems like materials and living cells The wild part? They did it at room temperature. Not in some ultra-cold, impractical lab-only setup. In a platform that could actually matter for real-world sensing. Inside a tiny defect in diamond, quantum correlations were used to pull out: amplitude frequency detuning phase all from the same measurement. That’s a big shift. Because the future of quantum tech isn’t just quantum computers. It’s quantum devices that can see more of reality at once. So the real question is When sensors stop measuring one thing at a time… how much of the hidden structure of matter becomes visible? Follow me for more physics breakthroughs that actually matter.show more

TheNewPhysics
23,131 views • 3 months ago