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		<title>Computer Science News -- ScienceDaily</title>
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		<description>Computer Science. Read all the latest developments in the computer sciences including articles on new software, hardware and systems.</description>
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		<pubDate>Wed, 10 Jun 2026 07:54:17 EDT</pubDate>
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			<title>Computer Science News -- ScienceDaily</title>
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			<description>For more science news, visit ScienceDaily.</description>
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			<title>Heat breaks the rules at the nanoscale and scientists used it to their advantage</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260606075511.htm</link>
			<description>Scientists used nanoscale gold metamaterials to supercharge heat transfer across tiny gaps, achieving up to four times more energy flow than similar conventional systems. The breakthrough could lead to better chip cooling, more efficient energy technologies, and a new era of precision heat engineering.</description>
			<pubDate>Mon, 08 Jun 2026 07:17:50 EDT</pubDate>
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			<title>Scientists are seriously asking if bees and ChatGPT are conscious</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260604044258.htm</link>
			<description>New studies suggest consciousness can&#039;t be judged solely by behavior, whether it&#039;s a chatbot discussing philosophy or a bee searching for nectar. Researchers are increasingly focusing on the internal mechanisms of brains and computers, concluding that today&#039;s AI is likely not conscious while leaving open the possibility for both conscious insects and future machines.</description>
			<pubDate>Fri, 05 Jun 2026 01:27:32 EDT</pubDate>
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			<title>New light-powered chip could accelerate AI and quantum computing</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260601025343.htm</link>
			<description>Scientists have created a tiny chip that can generate, steer, and read light-based information all in one device, marking a major leap toward ultra-fast, energy-efficient computing. The breakthrough uses atomically thin materials and nanoscale structures to control a unique quantum property of light called the “valley” degree of freedom, allowing information to be encoded in new ways.</description>
			<pubDate>Tue, 02 Jun 2026 00:30:26 EDT</pubDate>
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			<title>New 3D silicon chip breakthrough could extend Moore’s Law for years</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260530053412.htm</link>
			<description>As traditional chip miniaturization slows, researchers have found a way to pack more computing power into the same space by stacking silicon circuits in multiple layers. The new process uses ultra-thin silicon membranes and low-temperature manufacturing techniques to overcome a major obstacle that has long blocked the production of true 3D chips.</description>
			<pubDate>Sat, 30 May 2026 06:26:24 EDT</pubDate>
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			<title>Stanford quantum computing breakthrough uses twisted light to work without extreme cooling</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260528074028.htm</link>
			<description>A new room-temperature quantum device uses twisted light to entangle photons and electrons, overcoming one of the biggest hurdles in quantum technology. The breakthrough could pave the way for smaller, cheaper quantum systems with applications ranging from secure communications to future AI and computing platforms.</description>
			<pubDate>Sat, 30 May 2026 01:08:07 EDT</pubDate>
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			<title>AI-powered spectrometer chip shrinks lab technology to the size of a grain of sand</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260525000501.htm</link>
			<description>A new AI-powered chip from UC Davis can analyze light and chemicals using a device tiny enough to fit almost anywhere. By combining smart silicon sensors with machine learning, it achieves lab-style spectral analysis without the bulky equipment.</description>
			<pubDate>Tue, 26 May 2026 09:09:27 EDT</pubDate>
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			<title>Forget electrons, this breakthrough uses light-matter particles to power AI</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260518041341.htm</link>
			<description>Researchers at Penn have created a hybrid light-matter particle that could dramatically speed up AI computing while using far less energy. The breakthrough may help replace some electronic computing processes with ultra-efficient light-based technology.</description>
			<pubDate>Mon, 18 May 2026 20:23:26 EDT</pubDate>
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			<title>NASA’s new AI space chip could let spacecraft think for themselves</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260515002134.htm</link>
			<description>NASA is testing a next-generation space computer chip that could give spacecraft the ability to operate far more independently in deep space. The radiation-hardened processor is showing performance levels hundreds of times beyond current spaceflight computers while surviving punishing tests designed to mimic the harsh conditions of space. The technology could enable AI-powered spacecraft, faster scientific discoveries, and smarter missions to the Moon and Mars.</description>
			<pubDate>Fri, 15 May 2026 04:13:15 EDT</pubDate>
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			<title>Quantum breakthrough could revolutionize teleportation and computing</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260513034640.htm</link>
			<description>Scientists in Japan have developed a new way to instantly detect elusive quantum “W states,” a major milestone for quantum technology. The breakthrough could help unlock faster quantum communication, teleportation, and powerful new computing systems.</description>
			<pubDate>Wed, 13 May 2026 03:55:23 EDT</pubDate>
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			<title>New quantum algorithm solves “impossible” materials problem in seconds</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260512202355.htm</link>
			<description>A new quantum-inspired algorithm has cracked a problem so massive that conventional supercomputers struggle to even approach it. Researchers used the method to simulate extraordinarily complex quantum materials known as quasicrystals, opening the door to powerful new quantum devices and ultra-efficient electronics. The work could help scientists design advanced topological qubits and materials for future quantum computers.</description>
			<pubDate>Wed, 13 May 2026 03:33:27 EDT</pubDate>
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			<title>JUPITER supercomputer breaks world record with 50-qubit quantum simulation</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260510234715.htm</link>
			<description>Scientists in Germany have pulled off a staggering computing feat by fully simulating a 50-qubit quantum computer for the first time ever using Europe’s new exascale supercomputer, JUPITER. The breakthrough shatters the previous 48-qubit record and highlights just how powerful next-generation supercomputers have become.</description>
			<pubDate>Sun, 10 May 2026 23:47:15 EDT</pubDate>
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			<title>The hidden atomic gap that could break next-generation computer chips</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260508003125.htm</link>
			<description>A major obstacle may be standing in the way of the next generation of ultra-tiny computer chips. Researchers discovered that many promising 2D materials lose their advantages because an invisible atomic-scale gap forms when they are combined with insulating layers. That tiny gap weakens electronic performance and could prevent further miniaturization. The team says new “zipper materials” that lock together more tightly may offer a path forward.</description>
			<pubDate>Sat, 09 May 2026 18:48:13 EDT</pubDate>
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			<title>Scientists connect “time crystal” to real device in quantum breakthrough</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260504154024.htm</link>
			<description>A strange kind of matter that “ticks” forever without energy input has just taken a major leap toward real-world use. Known as a time crystal, this quantum system repeats its motion endlessly—like a clock that never winds down—and scientists have now managed to connect it to an external device for the first time. By linking the time crystal to a tiny mechanical oscillator, researchers showed they can actually control its behavior, opening the door to powerful new technologies.</description>
			<pubDate>Tue, 05 May 2026 16:53:45 EDT</pubDate>
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			<title>Scientists just created exotic new forms of matter that shouldn’t exist</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260504154014.htm</link>
			<description>A new quantum physics study reveals that simply changing a magnetic field over time can unlock entirely new forms of matter that don’t exist under normal conditions. By carefully “driving” materials with timed magnetic shifts, researchers created exotic quantum states that could be far more stable and resistant to errors—one of the biggest challenges in quantum computing. This breakthrough suggests that the future of quantum technology may depend not just on what materials are made of, but how they’re manipulated in time.</description>
			<pubDate>Mon, 04 May 2026 22:48:12 EDT</pubDate>
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			<title>Scientists built a memory chip that breaks the rules of miniaturization</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260502233908.htm</link>
			<description>A new kind of memory device may finally solve the problem of overheating and battery drain in electronics. By shrinking components to an extreme scale and redesigning their structure, researchers found a way to reduce energy loss instead of increasing it. The result is a tiny memory unit that improves as it gets smaller—something once thought impossible. This could pave the way for ultra-efficient smartphones, wearables, and AI systems.</description>
			<pubDate>Sun, 03 May 2026 03:08:59 EDT</pubDate>
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			<title>This new brain-like chip could slash AI energy use by 70%</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260422044633.htm</link>
			<description>A breakthrough in brain-inspired computing could make today’s energy-hungry AI systems far more efficient. Researchers have engineered a new nanoelectronic device using a modified form of hafnium oxide that mimics how neurons process and store information at the same time. Unlike conventional chips that waste energy moving data back and forth, this device operates with ultra-low power—potentially slashing energy use by up to 70%.</description>
			<pubDate>Thu, 23 Apr 2026 02:01:42 EDT</pubDate>
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			<title>Artificial neurons successfully communicate with living brain cells</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260417225020.htm</link>
			<description>Engineers at Northwestern University have taken a striking leap toward merging machines with the human brain by printing artificial neurons that can actually communicate with real ones. These flexible, low-cost devices generate lifelike electrical signals capable of activating living brain cells, a breakthrough demonstrated in mouse brain tissue.</description>
			<pubDate>Sat, 18 Apr 2026 03:32:36 EDT</pubDate>
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			<title>Quantum AI just got shockingly good at predicting chaos</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260417224455.htm</link>
			<description>Researchers have shown that blending quantum computing with AI can dramatically improve predictions of complex, chaotic systems. By letting a quantum computer identify hidden patterns in data, the AI becomes more accurate and stable over time. The method outperformed standard models while using far less memory. This could have big implications for fields like climate science, energy, and medicine.</description>
			<pubDate>Fri, 17 Apr 2026 23:51:09 EDT</pubDate>
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			<title>“Giant superatoms” could finally solve quantum computing’s biggest problem</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260413043155.htm</link>
			<description>In the pursuit of powerful and stable quantum computers, researchers at Chalmers University of Technology, Sweden, have developed the theory for an entirely new quantum system – based on the novel concept of ‘giant superatoms’. This breakthrough enables quantum information to be protected, controlled, and distributed in new ways and could be a key step towards building quantum computers at scale.</description>
			<pubDate>Mon, 13 Apr 2026 08:38:46 EDT</pubDate>
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			<title>Quantum systems can remember and forget at the same time, scientists discover</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260413043150.htm</link>
			<description>Quantum systems can secretly “remember” their past—even when they appear not to. Scientists found that whether a system shows memory depends on how you look at it: through its evolving state or its measurable properties. Each perspective uncovers different kinds of memory, meaning a system can seem memoryless and memory-filled at the same time. This discovery could change how researchers design and control quantum technologies.</description>
			<pubDate>Tue, 14 Apr 2026 01:55:52 EDT</pubDate>
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			<title>This new chip could slash data center energy waste</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260409101103.htm</link>
			<description>A new chip design from UC San Diego could make data centers far more energy-efficient by rethinking how power is converted for GPUs. By combining vibrating piezoelectric components with a clever circuit layout, the system overcomes limitations of traditional designs. The prototype achieved impressive efficiency and delivered much more power than previous attempts. Though not ready for widespread use yet, it points to a promising future for high-performance computing.</description>
			<pubDate>Fri, 10 Apr 2026 08:45:22 EDT</pubDate>
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			<title>Quantum computers keep losing data. This breakthrough finally tracks it</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260407193857.htm</link>
			<description>Quantum computers struggle with a major flaw: their information vanishes unpredictably. Scientists have now created a new method that can measure this loss over 100 times faster than before. By tracking changes in near real time, researchers can finally see what’s going wrong inside these systems. This could be a big step toward making quantum computers stable and practical.</description>
			<pubDate>Wed, 08 Apr 2026 01:02:44 EDT</pubDate>
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			<title>This new chip survives 1300°F (700°C) and could change AI forever</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260406192904.htm</link>
			<description>A team of engineers has created a breakthrough memory device that keeps working at temperatures hotter than molten lava, shattering one of electronics’ biggest limits. Built from an unusual stack of ultra-durable materials, the tiny component can store data and perform calculations even at 700°C (1300°F), far beyond what today’s chips can handle. The discovery was partly accidental, but it revealed a powerful new mechanism that prevents heat-induced failure at the atomic level.</description>
			<pubDate>Tue, 07 Apr 2026 01:32:38 EDT</pubDate>
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			<title>Scientists find quantum computers forget most of their work</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260406045126.htm</link>
			<description>Quantum circuits are supposed to gain power as they grow longer, but noise changes the picture. A new study finds that earlier steps in these circuits gradually lose their impact, with only the final layers really mattering. As a result, deep quantum circuits behave more like shallow ones. This limits what current quantum computers can realistically achieve.</description>
			<pubDate>Mon, 06 Apr 2026 05:08:06 EDT</pubDate>
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			<title>Laser-powered wireless hits 360 Gbps and uses half the energy of Wi-Fi</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260402042734.htm</link>
			<description>A new breakthrough in wireless technology could dramatically boost internet speeds while cutting energy use—by switching from radio waves to light. Researchers have developed a tiny chip packed with dozens of miniature lasers that can transmit massive amounts of data simultaneously, reaching speeds over 360 gigabits per second in early tests.</description>
			<pubDate>Thu, 02 Apr 2026 15:58:03 EDT</pubDate>
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			<title>World&#039;s smallest QR code, smaller than bacteria, could store data for centuries</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260328043603.htm</link>
			<description>Scientists have created a microscopic QR code so tiny it can only be seen with an electron microscope—smaller than most bacteria and now officially a world record. But this isn’t just about size; it’s about durability. By engraving data into ultra-stable ceramic materials, the team has opened the door to storing information that could last for centuries or even millennia without needing power or maintenance.</description>
			<pubDate>Sun, 29 Mar 2026 01:07:10 EDT</pubDate>
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			<title>Scientists discover bizarre new states inside tiny magnetic whirlpools</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260326075614.htm</link>
			<description>Researchers have uncovered a new way to generate exotic oscillation states in tiny magnetic structures—using only minimal energy. By exciting magnetic waves, they triggered a delicate motion that produced a rich spectrum of signals never seen before in this system. The finding challenges existing assumptions and could help connect different types of technologies, from conventional electronics to quantum devices. It’s a small effect with potentially huge implications.</description>
			<pubDate>Fri, 27 Mar 2026 07:34:19 EDT</pubDate>
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			<title>Physicists just turned glass into a powerful quantum security device</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260324024255.htm</link>
			<description>Scientists have turned simple glass into a powerful quantum communication device that could safeguard data against future quantum attacks. The chip combines stability, speed, and versatility—handling both ultra-secure encryption and record-breaking random number generation in one compact system.</description>
			<pubDate>Tue, 24 Mar 2026 03:43:30 EDT</pubDate>
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			<title>Scientists used 7,000 GPUs to simulate a tiny quantum chip in extreme detail</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260317064504.htm</link>
			<description>Researchers have pushed quantum chip design into a new era by simulating every physical detail before fabrication. Using a supercomputer with nearly 7,000 GPUs, they modeled how signals travel and interact inside an ultra-tiny chip. Unlike earlier “black box” approaches, this method captures real materials, layouts, and qubit behavior. The result is a powerful new way to spot problems early and build better quantum hardware faster.</description>
			<pubDate>Tue, 17 Mar 2026 23:35:04 EDT</pubDate>
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			<title>THOR AI solves a 100-year-old physics problem in seconds</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260315004344.htm</link>
			<description>A new AI framework called THOR is transforming how scientists calculate the behavior of atoms inside materials. Instead of relying on slow simulations that take weeks of supercomputer time, the system uses tensor network mathematics and machine-learning models to solve the problem directly. The approach can compute key thermodynamic properties hundreds of times faster while preserving accuracy. Researchers say this could accelerate discoveries in materials science, physics, and chemistry.</description>
			<pubDate>Sun, 15 Mar 2026 20:38:21 EDT</pubDate>
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			<title>Scientists finally see the atomic flaws hiding inside computer chips</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260305182657.htm</link>
			<description>Researchers at Cornell University have developed a powerful imaging technique that reveals atomic scale defects inside computer chips for the first time. Using an advanced electron microscopy method, the team mapped the exact positions of atoms inside tiny transistor structures and uncovered small imperfections nicknamed “mouse bites.” These defects form during the complex manufacturing process and can disrupt how electrons flow through a chip’s channels, which are only about 15 to 18 atoms wide.</description>
			<pubDate>Thu, 05 Mar 2026 19:42:42 EST</pubDate>
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			<title>A tiny twist creates giant magnetic skyrmions in 2D crystals</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260302030654.htm</link>
			<description>Twisting atomically thin magnetic layers does more than reshape their electronics—it can create giant, topological magnetic textures. In chromium triiodide, researchers observed skyrmion-like patterns stretching far beyond the expected moiré scale, reaching hundreds of nanometers. Even more surprising, their size doesn’t simply follow the twist pattern but peaks at a specific angle. This twist-controlled magnetism could pave the way for low-power spintronic devices built from geometry alone.</description>
			<pubDate>Mon, 02 Mar 2026 03:45:13 EST</pubDate>
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			<title>Researchers unlock hidden dimensions inside a single photon</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260226042500.htm</link>
			<description>Researchers have discovered new ways to shape quantum light, creating high-dimensional states that can carry much more information per photon. Using advanced tools like on-chip photonics and ultrafast light structuring, they’re pushing quantum communication and imaging into exciting new territory. Although long-distance transmission remains tricky, innovative approaches—such as topological quantum states—could make these fragile signals far more resilient. The momentum suggests quantum optics is entering a bold new phase.</description>
			<pubDate>Thu, 26 Feb 2026 11:23:52 EST</pubDate>
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			<title>A simple chemical tweak could supercharge quantum computers</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260224023211.htm</link>
			<description>Quantum computers need special materials called topological superconductors—but they’ve been notoriously difficult to create. Researchers have now shown they can trigger this exotic state by subtly adjusting the mix of tellurium and selenium in ultra-thin films. That tiny chemical tweak changes how electrons interact, effectively turning a quantum phase “dial” until the ideal state appears. The result is a more practical path toward building stable, next-generation quantum devices.</description>
			<pubDate>Wed, 25 Feb 2026 06:43:17 EST</pubDate>
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			<title>Generative AI analyzes medical data faster than human research teams</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260221060942.htm</link>
			<description>Researchers tested whether generative AI could handle complex medical datasets as well as human experts. In some cases, the AI matched or outperformed teams that had spent months building prediction models. By generating usable analytical code from precise prompts, the systems dramatically reduced the time needed to process health data. The findings hint at a future where AI helps scientists move faster from data to discovery.</description>
			<pubDate>Sat, 21 Feb 2026 06:17:29 EST</pubDate>
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			<title>Scientists may have found the holy grail of quantum computing</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260221000252.htm</link>
			<description>Scientists may have spotted a long-sought triplet superconductor — a material that can transmit both electricity and electron spin with zero resistance. That ability could dramatically stabilize quantum computers while slashing their energy use. Early experiments suggest the alloy NbRe behaves unlike any conventional superconductor. If verified, it could become a cornerstone of next-generation quantum and spintronic technology.</description>
			<pubDate>Sat, 21 Feb 2026 07:10:00 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/02/260221000252.htm</guid>
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			<title>Quantum computer breakthrough tracks qubit fluctuations in real time</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260219040756.htm</link>
			<description>Qubits, the heart of quantum computers, can change performance in fractions of a second — but until now, scientists couldn’t see it happening. Researchers at NBI have built a real-time monitoring system that tracks these rapid fluctuations about 100 times faster than previous methods. Using fast FPGA-based control hardware, they can instantly identify when a qubit shifts from “good” to “bad.” The discovery opens a new path toward stabilizing and scaling future quantum processors.</description>
			<pubDate>Fri, 20 Feb 2026 09:03:48 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/02/260219040756.htm</guid>
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			<title>Brain inspired machines are better at math than expected</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260213223923.htm</link>
			<description>Neuromorphic computers modeled after the human brain can now solve the complex equations behind physics simulations — something once thought possible only with energy-hungry supercomputers. The breakthrough could lead to powerful, low-energy supercomputers while revealing new secrets about how our brains process information.</description>
			<pubDate>Sat, 14 Feb 2026 10:19:40 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/02/260213223923.htm</guid>
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			<title>A clever quantum trick brings practical quantum computers closer</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260206012208.htm</link>
			<description>Quantum computers struggle because their qubits are incredibly easy to disrupt, especially during calculations. A new experiment shows how to perform quantum operations while continuously fixing errors, rather than pausing protection to compute. The team used a method called lattice surgery to split a protected qubit into two entangled ones without losing control. This breakthrough moves quantum machines closer to scaling up into something truly powerful.</description>
			<pubDate>Fri, 06 Feb 2026 09:10:15 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/02/260206012208.htm</guid>
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			<title>A tiny light trap could unlock million qubit quantum computers</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260201223737.htm</link>
			<description>A new light-based breakthrough could help quantum computers finally scale up. Stanford researchers created miniature optical cavities that efficiently collect light from individual atoms, allowing many qubits to be read at once. The team has already demonstrated working arrays with dozens and even hundreds of cavities. The approach could eventually support massive quantum networks with millions of qubits.</description>
			<pubDate>Mon, 02 Feb 2026 00:01:14 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/02/260201223737.htm</guid>
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			<title>Scientists found a way to cool quantum computers using noise</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260129080418.htm</link>
			<description>Quantum computers need extreme cold to work, but the very systems that keep them cold also create noise that can destroy fragile quantum information. Scientists in Sweden have now flipped that problem on its head by building a tiny quantum refrigerator that actually uses noise to drive cooling instead of fighting it. By carefully steering heat at unimaginably small scales, the device can act as a refrigerator, heat engine, or energy amplifier inside quantum circuits.</description>
			<pubDate>Thu, 29 Jan 2026 08:42:30 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260129080418.htm</guid>
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			<title>AI that talks to itself learns faster and smarter</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260127112130.htm</link>
			<description>AI may learn better when it’s allowed to talk to itself. Researchers showed that internal “mumbling,” combined with short-term memory, helps AI adapt to new tasks, switch goals, and handle complex challenges more easily. This approach boosts learning efficiency while using far less training data. It could pave the way for more flexible, human-like AI systems.</description>
			<pubDate>Wed, 28 Jan 2026 03:47:06 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260127112130.htm</guid>
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			<title>Scientists say quantum tech has reached its transistor moment</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260127010136.htm</link>
			<description>Quantum technology has reached a turning point, echoing the early days of modern computing. Researchers say functional quantum systems now exist, but scaling them into truly powerful machines will require major advances in engineering and manufacturing. By comparing different quantum platforms, the study reveals both impressive progress and steep challenges ahead. History suggests the payoff could be enormous—but not immediate.</description>
			<pubDate>Tue, 27 Jan 2026 06:17:54 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260127010136.htm</guid>
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			<title>Unbreakable? Researchers warn quantum computers have serious security flaws</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260120000330.htm</link>
			<description>Quantum computers could revolutionize everything from drug discovery to business analytics—but their incredible power also makes them surprisingly vulnerable. New research from Penn State warns that today’s quantum machines are not just futuristic tools, but potential gold mines for hackers. The study reveals that weaknesses can exist not only in software, but deep within the physical hardware itself, where valuable algorithms and sensitive data may be exposed.</description>
			<pubDate>Tue, 20 Jan 2026 09:03:36 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260120000330.htm</guid>
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			<title>Inside the mysterious collapse of dark matter halos</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260118233609.htm</link>
			<description>Physicists have unveiled a new way to simulate a mysterious form of dark matter that can collide with itself but not with normal matter. This self-interacting dark matter may trigger a dramatic collapse inside dark matter halos, heating and densifying their cores in surprising ways. Until now, this crucial middle ground of behavior was nearly impossible to model accurately. The new code makes these simulations faster, more precise, and accessible enough to run on a laptop.</description>
			<pubDate>Mon, 19 Jan 2026 07:52:41 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260118233609.htm</guid>
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			<title>Engineers just created a “phonon laser” that could shrink your next smartphone</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260116035319.htm</link>
			<description>Engineers have created a device that generates incredibly tiny, earthquake-like vibrations on a microchip—and it could transform future electronics. Using a new kind of “phonon laser,” the team can produce ultra-fast surface waves that already play a hidden role in smartphones, GPS systems, and wireless tech. Unlike today’s bulky setups, this single-chip device could deliver far higher performance using less power, opening the door to smaller, faster, and more efficient phones and wireless devices.</description>
			<pubDate>Sat, 17 Jan 2026 10:43:09 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260116035319.htm</guid>
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			<title>Tiny 3D-printed light cages could unlock the quantum internet</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260106001907.htm</link>
			<description>A new chip-based quantum memory uses nanoprinted “light cages” to trap light inside atomic vapor, enabling fast, reliable storage of quantum information. The structures can be fabricated with extreme precision and filled with atoms in days instead of months. Multiple memories can operate side by side on a single chip, all performing nearly identically. The result is a powerful, scalable building block for future quantum communication and computing.</description>
			<pubDate>Tue, 06 Jan 2026 02:14:34 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260106001907.htm</guid>
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			<title>Scientists create robots smaller than a grain of salt that can think</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260105165815.htm</link>
			<description>Researchers have created microscopic robots so small they’re barely visible, yet smart enough to sense, decide, and move completely on their own. Powered by light and equipped with tiny computers, the robots swim by manipulating electric fields rather than using moving parts. They can detect temperature changes, follow programmed paths, and even work together in groups. The breakthrough marks the first truly autonomous robots at this microscopic scale.</description>
			<pubDate>Tue, 06 Jan 2026 07:33:12 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260105165815.htm</guid>
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			<title>This tiny chip could change the future of quantum computing</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251226045341.htm</link>
			<description>A new microchip-sized device could dramatically accelerate the future of quantum computing. It controls laser frequencies with extreme precision while using far less power than today’s bulky systems. Crucially, it’s made with standard chip manufacturing, meaning it can be mass-produced instead of custom-built. This opens the door to quantum machines far larger and more powerful than anything possible today.</description>
			<pubDate>Fri, 26 Dec 2025 10:38:10 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251226045341.htm</guid>
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			<title>This strange magnetism could power tomorrow’s AI</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251226045326.htm</link>
			<description>Scientists in Japan have confirmed that ultra-thin films of ruthenium dioxide belong to a newly recognized and powerful class of magnetic materials called altermagnets. These materials combine the best of two magnetic worlds: they’re stable against interference yet still allow fast, electrical readout—an ideal mix for future memory technology.</description>
			<pubDate>Fri, 26 Dec 2025 10:12:15 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251226045326.htm</guid>
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			<title>This new 3D chip could break AI’s biggest bottleneck</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251223084857.htm</link>
			<description>Researchers have created a new kind of 3D computer chip that stacks memory and computing elements vertically, dramatically speeding up how data moves inside the chip. Unlike traditional flat designs, this approach avoids the traffic jams that limit today’s AI hardware. The prototype already beats comparable chips by several times, with future versions expected to go much further. Just as important, it was manufactured entirely in a U.S. foundry, showing the technology is ready for real-world production.</description>
			<pubDate>Wed, 24 Dec 2025 01:21:36 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251223084857.htm</guid>
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			<title>“Purifying” photons: Scientists found a way to clean light itself</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251223084534.htm</link>
			<description>A new discovery shows that messy, stray light can be used to clean up quantum systems instead of disrupting them. University of Iowa researchers found that unwanted photons produced by lasers can be canceled out by carefully tuning the light itself. The result is a much purer stream of single photons, a key requirement for quantum computing and secure communication. The work could help push photonic quantum technology closer to real-world use.</description>
			<pubDate>Tue, 23 Dec 2025 09:51:14 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251223084534.htm</guid>
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			<title>Ramanujan’s 100-year-old pi formula is still revealing the Universe</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251216081949.htm</link>
			<description>Ramanujan’s elegant formulas for calculating pi, developed more than a century ago, have unexpectedly resurfaced at the heart of modern physics. Researchers at IISc discovered that the same mathematical structures behind these formulas also describe real-world phenomena like turbulence, percolation, and even black holes. What once seemed like pure mathematics now appears deeply intertwined with the physical laws governing the universe.</description>
			<pubDate>Tue, 16 Dec 2025 08:19:49 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251216081949.htm</guid>
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			<title>Scientists reveal a tiny brain chip that streams thoughts in real time</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251209234139.htm</link>
			<description>BISC is an ultra-thin neural implant that creates a high-bandwidth wireless link between the brain and computers. Its tiny single-chip design packs tens of thousands of electrodes and supports advanced AI models for decoding movement, perception, and intent. Initial clinical work shows it can be inserted through a small opening in the skull and remain stable while capturing detailed neural activity. The technology could reshape treatments for epilepsy, paralysis, and blindness.</description>
			<pubDate>Tue, 09 Dec 2025 23:54:39 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251209234139.htm</guid>
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			<title>Scientists just found a way to tell if quantum computers are wrong</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251130205506.htm</link>
			<description>Researchers unveiled a new technique that validates quantum computer results—especially those from GBS devices—in minutes instead of millennia. Their findings expose unexpected errors in a landmark experiment, offering a crucial step toward truly reliable quantum machines.</description>
			<pubDate>Mon, 01 Dec 2025 10:19:09 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251130205506.htm</guid>
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			<title>Miracle material’s hidden quantum power could transform future electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251128050527.htm</link>
			<description>Researchers have directly observed Floquet effects in graphene for the first time, settling a long-running scientific debate. Their ultrafast light-based technique demonstrates that graphene’s electronic properties can be tuned almost instantaneously. This paves the way for custom-engineered quantum materials and new approaches in electronics and sensing.</description>
			<pubDate>Fri, 28 Nov 2025 10:21:37 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251128050527.htm</guid>
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			<title>Light has been hiding a magnetic secret for nearly 200 years</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251120091945.htm</link>
			<description>New research shows that light’s magnetic field is far more influential than scientists once believed. The team found that this magnetic component significantly affects how light rotates as it passes through certain materials. Their work challenges a 180-year-old understanding of the Faraday Effect and opens pathways to new optical and magnetic technologies.</description>
			<pubDate>Thu, 20 Nov 2025 09:59:00 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251120091945.htm</guid>
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			<title>Quantum computers just simulated physics too complex for supercomputers</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251118220104.htm</link>
			<description>Researchers created scalable quantum circuits capable of simulating fundamental nuclear physics on more than 100 qubits. These circuits efficiently prepare complex initial states that classical computers cannot handle. The achievement demonstrates a new path toward simulating particle collisions and extreme forms of matter. It may ultimately illuminate long-standing cosmic mysteries.</description>
			<pubDate>Wed, 19 Nov 2025 12:32:19 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251118220104.htm</guid>
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			<title>Physicists reveal a new quantum state where electrons run wild</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251116105625.htm</link>
			<description>Electrons can freeze into strange geometric crystals and then melt back into liquid-like motion under the right quantum conditions. Researchers identified how to tune these transitions and even discovered a bizarre “pinball” state where some electrons stay locked in place while others dart around freely. Their simulations help explain how these phases form and how they might be harnessed for advanced quantum technologies.</description>
			<pubDate>Sun, 16 Nov 2025 10:56:25 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251116105625.htm</guid>
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			<title>Princeton’s new quantum chip marks a major step toward quantum advantage</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251116105622.htm</link>
			<description>A Princeton team built a new tantalum-silicon qubit that survives for over a millisecond, far surpassing today’s best devices. The design tackles surface defects and substrate losses that have limited transmon qubits for years. Easy to integrate into existing quantum chips, the approach could make processors like Google’s vastly more powerful.</description>
			<pubDate>Mon, 17 Nov 2025 01:07:02 EST</pubDate>
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