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๐—ฆ๐˜‚๐—ฝ๐—ฒ๐—ฟ๐—ฟ๐—ฎ๐—ฑ๐—ถ๐—ฎ๐—ป๐—ฐ๐—ฒ ๐—ถ๐—ป ๐— ๐—ถ๐—ฐ๐—ฟ๐—ผ๐˜๐˜‚๐—ฏ๐˜‚๐—น๐—ฒ๐˜€: ๐—” ๐—š๐—น๐—ถ๐—บ๐—ฝ๐˜€๐—ฒ ๐—œ๐—ป๐˜๐—ผ ๐—ค๐˜‚๐—ฎ๐—ป๐˜๐˜‚๐—บ ๐—•๐—ถ๐—ผ๐—น๐—ผ๐—ด๐˜†? Researchers may have just found quantum superpowers in microtubules. Yes, you read that rightโ€”quantum *superradiance* in the brain! Superradiance is a phenomenon where excited particles behave like a team, emitting photons collectively in a bright, ultra-fast burst. This is different from...

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Ann-Marie Bell ็š„ๅคดๅƒ
Ann-Marie Bell1 ๅนดๅ‰

Fenbendazole works to disrupt microtubule growth in brain cancer cells. It seems very possible that the combination of ultra low frequency ultrasound and Fenbendazole would work together in brain cancer cells to both promote healthy microtubule growth (ultrasound) and inhibit/slow cancerous microtubule growth (fenbendazole). Iโ€™ve been thinking about this for several daysโ€ฆ. Quite intriguing!!! ๐Ÿ™Œ๐Ÿผ

OnlineBookClub.org ็š„ๅคดๅƒ
OnlineBookClub.org1 ๅนดๅ‰

What is the nature of an existence that is experienced entirely outside of time itself? Can a single decision that is made in a state of timelessness simultaneously affect EVERY point in time and space? Groundbreaking reconciliation of creationism with natural science.

Raรบl R Romero ็š„ๅคดๅƒ
Raรบl R Romero1 ๅนดๅ‰

My formula proves that everything is recursive:

lux ๐“…ช ็š„ๅคดๅƒ
lux ๐“…ช1 ๅนดๅ‰

straight from the horse's mouth

steven turner ็š„ๅคดๅƒ
steven turner1 ๅนดๅ‰

if the particles need to be closer than the wavelength wouldn't longer wavelengths like IR have a larger effect?

Great Seal of the United States ๐Ÿ‡บ๐Ÿ‡ธ ็š„ๅคดๅƒ
Great Seal of the United States ๐Ÿ‡บ๐Ÿ‡ธ1 ๅนดๅ‰

"Marijuana" = Dried Cannabis Fluorescence

Lilith Datura ็š„ๅคดๅƒ
Lilith Datura1 ๅนดๅ‰

Interesting, this also made me think of metamaterials (although different scales). "Metamaterials for Enhancing Superradiance: Some research explores using metamaterial structures to enhance or control superradiant emissions. By designing materials with specific periodicities or using plasmonic structures, one can potentially increase the coupling between emitters or control the directionality of the superradiant emission. Cavity Quantum Electrodynamics (QED): Metamaterials or photonic crystals can be used to create cavities that enhance the interaction between light and matter, which could be leveraged to study or enhance superradiant effects."

็›ธๅ…ณ่ง†้ข‘

๐Ÿšจ QUANTUM COMPUTING: THE NEXT TECH GOLD RUSH Quantum computing (QC) is about to blow up the tech world. Think of it as AI on steroidsโ€”but hereโ€™s the kicker: the entire U.S. quantum sector is worth less than Dogecoin. Imagine buying Bitcoin at $500. Thatโ€™s where QC is today. Regular computers process in 1s and 0s. QCs use qubits, which can be 1, 0, or both at the same time (superposition). Translation? They solve ridiculously complex problems insanely fast. Google recently ran a calculation on its quantum chip in 5 minutes that would take the worldโ€™s fastest supercomputer 10 septillion years to complete. Yes, thatโ€™s older than the universe. Why it matters: QC isnโ€™t just a cool science projectโ€”itโ€™s a game-changer: Medicine: Design drugs in weeks, not years. Finance: Smarter investments, faster decisions. AI: Supercharges AI, making todayโ€™s breakthroughs look tiny. McKinsey predicts QC will add trillions to the economy in the next decade. Entire industries will be rewritten. We are closer than most people think. Quantum startups are already hitting 10 qubits, aiming for 100 in 2 years and thousands in 5 years. QC is already solving real problems in medicine, defense, and finance, and platforms like AWS and Google let you rent quantum power right now. Hereโ€™s the wild part: the entire U.S. quantum sector is trading for less than a meme coin. Meanwhile, China is outspending the U.S. 5 to 1 in quantum development. Legislation like the Quantum Leadership Act is injecting billions into R&D, but QCโ€™s โ€œChatGPT momentโ€โ€”where its potential becomes undeniableโ€”is just 2-3 years away. The upside here is massive. QC isnโ€™t just going to change industriesโ€”itโ€™s going to flip them on their heads. When its moment comes, the repricing will be fast and brutal. The clock is ticking. Source: Charles Edwards

Mario Nawfal

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๐ŸšจPHYSICS NEWS๐Ÿšจ: Physicists Are Now Saying Time Itself Can Be in Superposition โ€” And It Makes Perfect Sense ๐Ÿงจ According to a theoretical framework published in *Physical Review Letters* and reported in May 2026, researchers have shown that state-of-the-art trapped-ion atomic clocks can be used to observe the quantum superposition of time. By entangling the clockโ€™s motion with its internal energy states, the system can exist in a superposition of different time flows simultaneously. This is a major step toward experimentally probing the quantum nature of time itself. This work offers the broader scientific community a new experimental frontier in quantum foundations. It challenges classical notions of time as a universal parameter and opens the door to testing how relativity and quantum mechanics intersect at the level of time itself. **Uniphics has been saying something similar for years โ€” and itโ€™s not mysterious or weird.** In Uniphics, time flow is not a fixed background. It is a local property determined by energy density via the Maley transform (\( t_{\rm flow} = k / E_d \)). Different regions or configurations with different energy densities experience different time flows. When a system is prepared in a quantum superposition of different energy-density states (or different spin-wave configurations that affect local energy density), it naturally exists in a superposition of different time flows. The atomic clock experiments are essentially creating superposed states where the clock experiences different local time flows at the same โ€œglobalโ€ moment. The entanglement between motion and internal energy is the mechanism that allows the superposition to be maintained and detected. Uniphics predicts this behavior because the ฮพM-field supports coherent spin-wave patterns that can correlate different energy-density environments. No need for wavefunction collapse, many-worlds, or other interpretive gymnastics โ€” it is a deterministic consequence of variable time flow and spin-wave coherence. This is not an add-on to quantum mechanics. It is the natural outcome of the three pillars. The โ€œquantum superposition of timeโ€ is just what happens when spin quanta create superposed energy-density conditions. Uniphics explains why such experiments work, what limits they will hit, and how to extend them โ€” all without the philosophical baggage that usually accompanies quantum foundations. The mainstream community is slowly catching up to the idea that time itself can be quantum. Uniphics has had a coherent, first-principles explanation for this from the beginning. The data will continue to support it. Are physicists finally ready to accept that time flow is fundamental and variable โ€” and that the apparent โ€œsuperposition of timeโ€ is simply the result of superposed energy-density states in the ฮพM-field? **A Theory of Everything should be able to answer everything.** Uniphics Explained Simply PDF: Chapters 1โ€“10 free: Grokipedia: #Uniphics #TheoryOfEverything #QuantumTime #TimeFlow #SpinWaves Grok xAI

Paul Maley

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6,100-Qubit Processor Shatters Quantum Computing Record | David Nield, ScienceAlert Another major quantum computing record has been broken, and by a considerable margin: physicists have now built an array containing 6,100 qubits, the largest of its type and way above the thousand or so qubits previous systems contained. It's the work of scientists from the California Institute of Technology, who used cesium atoms as their qubits, trapping them in place with a complex system of lasers that acted as tweezers to keep the atoms as stable as possible. Qubits differ from the classical bits of traditional computers by exploiting what's known as a superposition: not just binary states of 1 or 0, but a spread of probabilities that allows for algorithms that can solve problems considered out of reach of conventional computing methods. Related: Quantum Advantage: A Physicist Explains The Future of Computers A lot of qubits will be needed to make quantum algorithms practical, however. One reason for these large arrays is error correction, which helps overcome the inherent fragility of the qubit by providing a surplus to double-check the machine's operation. "This is an exciting moment for neutral-atom quantum computing," says physicist Manuel Endres. "We can now see a pathway to large error-corrected quantum computers. The building blocks are in place." There was no single breakthrough that enabled this jump in qubit numbers, but rather a series of engineering advancements in many key areas โ€“ from the laser tweezers to the ultra-high (very low pressure) vacuum chamber. Stability has also been a problem for quantum computing systems. The innovations in this latest array kept qubits in a superposition state for almost 13 seconds โ€“ almost ten times longer than previous configurations had managed. What's more, individual qubits could be manipulated with 99.98 percent accuracy, establishing a significant benchmark in the programmability of quantum technology. "Large scale, with more atoms, is often thought to come at the expense of accuracy, but our results show that we can do both," says physicist Gyohei Nomura. "Qubits aren't useful without quality. Now we have quantity and quality." To make quantum computers a practical alternative to modern supercomputers, more qubits and even greater levels of stability will be required. Experts are tackling the problem from several different angles, which is why records for some types of quantum computer don't necessarily apply to others. Next, the researchers need to work on exploiting entanglement, which will enable the system to make the leap from storing information to actually processing it. Not too far in the future, we could be using these computers to discover new materials, matter, and fundamental laws of physics. "It's exciting that we are creating machines to help us learn about the Universe in ways that only quantum mechanics can teach us," says physicist Hannah Manetsch. Read more:

Owen Gregorian

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D-Wave announced a scientific breakthrough published in the esteemed journal Science Magazine, confirming that its annealing quantum computer outperformed one of the worldโ€™s most powerful classical supercomputers in solving a complex magnetic materials simulation problem with relevance to materials discovery. The new landmark peer-reviewed paper, โ€œBeyond-Classical Computation in Quantum Simulation,โ€ validates this achievement as the worldโ€™s first and only demonstration of quantum computational supremacy on a useful problem. An international collaboration of scientists led by D-Wave performed simulations of quantum dynamics in programmable spin glassesโ€”a computationally hard magnetic materials simulation problem with known applications to business and scienceโ€”on both D-Waveโ€™s Advantage2โ„ข prototype annealing quantum computer and the Frontier supercomputer at the Department of Energyโ€™s Oak Ridge Lab. D-Waveโ€™s quantum computer performed a complex simulation in minutes and with a level of accuracy that would take nearly a million years using the supercomputer. In addition, it would require more than the worldโ€™s annual electricity consumption to solve this problem using the supercomputer, which is built with graphics processing unit (GPU) clusters. For decades, scientists have aspired to build a quantum computer capable of solving complex materials simulation problems beyond the reach of classical computers. D-Wave's advancements in quantum hardware have made it possible for its annealing quantum computers to process these types of problems for the first time. Magnetic materials simulations, like those conducted in this work, use computer models to study how tiny particles not visible to the human eye react to external factors. Magnetic materials are widely used in medical imaging, electronics, superconductors, electrical networks, sensors, and motors. This is an incredibly important achievement. Please join us in congratulating the D-Wave team and our global collaborators on this remarkable milestone. Itโ€™s a significant moment for the quantum computing industry. Learn more about this monumental achievement: Read the press release here: #QuantumSupremacy #QuantumRealized #QuantumComputing #DWave #Technology #Innovation #Optimization #MaterialsDiscovery #ScientificBreakthrough $QBTS

D-Wave

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BREAKING: THE MOST IMPORTANT VIDEO TO WATCH IF YOU ARE INVESTED IN QUANTUM COMPUTING COMPANIES. $IONQ $RGTI $QBTS $QUBT The world's leading quantum computing researcher Scott Aaronson calls out the scams and snakeoilmen in the public quantum computing stock market. $IONQ $RGTI $QBTS $QUBT - "The most important thing that I can say in this whole interview, if I am taking to Retail investors is that unfortunately there are companies that I see that are really trying to solve the hardware problems, they might succeed, they might fail but they are really focused on solving the real problems and talking about it more or less honestly" - "and then there are companies that have focused on like marketing themselves to Retail investors and doing IPO's" i.e. the 4 public quantum computing companies IONQ, Rigetti, D-Wave and QUBT. - "and I see these 2 sets of companies being mostly disjoint from each other" - "So the companies that have focused on doing IPO's are actually not the ones that are in the lead on in the hardware, what they are in the lead on is selling a narrative to people...... - "convincing people this is already useful for solving problems in optimization and machine learning and finance, which sounds great to people, but all depends on you agreeing to not ask the question Q. well could a classical computer have done that just as well, could a classical computer actually have done that much faster and easier " "When people are talking about that the big use of a quantum computer is to solve optimization or machine learning problems or to turbo charge AI, or it can already do this, it's already delivering value to customers...." "these are the tells you are dealing with a SNAKEOIL SALESMAN" He calls out the "scammy" companies in this space! Remember the only 4 quantum pure play companies that have IPO'd are $IONQ $RGTI $QUBT $QBTS He also says earlier in the interview โ€œI would say $IONQ has not demonstrated anything in trapped ion hardware close to what Quantinuum has demonstrated in the last yearโ€ YOU ARE BEING LIED TO! Full video in comments from the The Quantum Bull

Common Sense Investor (CSI)

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