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                    <title>Phys.org - latest science and technology news stories</title>
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            <description>Phys.org internet news portal provides the latest news on science including: Physics, Nanotechnology, Life Sciences, Space Science, Earth Science, Environment, Health and Medicine.</description>

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                    <title>New method could sharpen diamond quantum sensors for tracking activity in single cells</title>
                    <description>A diamond-based quantum sensor inserted into a living cell can provide previously unseen levels of detail about how life works and how diseases form. &quot;Think of it as an EKG for a single cell—a way to capture everything happening inside at once, in real time,&quot; said University of Chicago Pritzker School of Molecular Engineering professor Aaron Esser-Kahn. &quot;We routinely monitor vital signs in people—heart rate, breathing, temperature—but until now, there simply hasn&#039;t been an equivalent way to take a cell&#039;s vitals.&quot;</description>
                    <link>https://phys.org/news/2026-08-method-sharpen-diamond-quantum-sensors.html</link>
                    <category>Cell &amp; Microbiology</category>                    <pubDate>Tue, 04 Aug 2026 14:20:01 EDT</pubDate>
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                    <title>Magnetic dopants help quantum dots use light for chemical reactions</title>
                    <description>Scientists at Los Alamos National Laboratory have demonstrated a new quantum-dot mechanism that could significantly expand the reach of light-driven chemistry. By introducing magnetic manganese dopants into semiconductor quantum dots, the team created an ultrafast spin-exchange pathway that captures hot-electron energy before it is lost as heat and uses it to drive chemical reduction.</description>
                    <link>https://phys.org/news/2026-08-magnetic-dopants-quantum-dots-chemical.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 04 Aug 2026 09:40:03 EDT</pubDate>
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                    <title>Two independent studies push semiconductor qubits towards practical scales</title>
                    <description>Semiconductor spin qubits are one of the most promising building blocks for future quantum computers, but turning them into a working, large-scale quantum computer has so far proven difficult. For now, two big questions remain open: how to connect qubits that aren&#039;t sitting right next to each other, and how to control huge numbers of them without an unmanageable tangle of wiring.</description>
                    <link>https://phys.org/news/2026-07-independent-semiconductor-qubits-scales.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Fri, 31 Jul 2026 07:20:04 EDT</pubDate>
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                    <title>Cesium atoms and quantum dots generate indistinguishable photons for modular quantum networks</title>
                    <description>Large-scale quantum communication networks require both reliable quantum memories and coherent single-photon sources that can exchange quantum information efficiently. A coherent source of single photons with narrow linewidth, high brightness, spectral uniformity and compatibility with quantum memories is necessary. While a variety of single-photon sources, such as quantum dots (QDs) and atoms in warm vapor cells, have been developed in recent years, each has inherent limitations, making a scalable and functional quantum network challenging to achieve.</description>
                    <link>https://phys.org/news/2026-07-cesium-atoms-quantum-dots-generate.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Thu, 30 Jul 2026 16:20:07 EDT</pubDate>
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                    <title>First electrically pumped perovskite polariton laser diode solves a decades-long challenge</title>
                    <description>Resolving a long-standing problem in semiconductor physics and optoelectronics, a team of researchers from Skoltech—a VEB.RF group institution—and their colleagues from ITMO University and HSE University have for the first time demonstrated direct electrical pumping of a polariton laser based on a solution-processed halide perovskite microcrystal. Published in Nature, this solution to a decades-long technological challenge ushers in inexpensive nonepitaxial laser diodes operating under continuous electric current. These could be used in optical sensing and spectroscopy, high-speed computing and energy-efficient neuromorphic computing.</description>
                    <link>https://phys.org/news/2026-07-electrically-perovskite-polariton-laser-diode.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 29 Jul 2026 15:20:06 EDT</pubDate>
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                    <title>2D quantum memory device reaches single-electron limit of information storage</title>
                    <description>Most electronic memory storage devices require the ability to trap large numbers of electrons for each bit of memory. In an ideal world, however, it would take only one electron. This would reduce space requirements and power consumption for devices. Now, a team in China has realized this goal with an ultrathin device capable of minimizing the stray capacitance that plagued earlier attempts. The new study, published in Science, describes how this novel device has overcome challenges in implementing the single-electron design.</description>
                    <link>https://phys.org/news/2026-07-2d-quantum-memory-device-electron.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 29 Jul 2026 14:40:09 EDT</pubDate>
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                    <title>Quantum dots reveal hidden light waves on metal surfaces</title>
                    <description>Photographs can reveal things that are otherwise impossible for the naked eye to see, be they distant galaxies or microscopic cells. Researchers at Osaka Metropolitan University have developed a practical and versatile imaging technique that makes another usually invisible phenomenon visible: surface plasmon polaritons (SPPs), light waves that travel along metal surfaces.</description>
                    <link>https://phys.org/news/2026-07-quantum-dots-reveal-hidden-metal.html</link>
                    <category>Nanophysics</category>                    <pubDate>Fri, 24 Jul 2026 14:40:07 EDT</pubDate>
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                    <title>Quantum Newton&#039;s cradle set to level up computing</title>
                    <description>Sending quantum information through a chain of qubits, like energy through a Newton&#039;s cradle, could be the key to faster operations and take quantum computing to the next level.</description>
                    <link>https://phys.org/news/2026-07-quantum-newton-cradle.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Thu, 23 Jul 2026 14:20:03 EDT</pubDate>
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                    <title>AI unlocks QLED recipe that doubles efficiency and boosts lifetime 40-fold</title>
                    <description>A technology has been developed that allows artificial intelligence to inversely determine the process conditions for quantum-dot light-emitting diode (QLED) devices—conditions that previously required extensive trial and error to identify.</description>
                    <link>https://phys.org/news/2026-07-ai-qled-recipe-efficiency-boosts.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Sat, 18 Jul 2026 08:00:09 EDT</pubDate>
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                    <title>Scientists achieve all-electrical control of single-molecule quantum states</title>
                    <description>Quantum technologies promise revolutionary advances in computing, sensing and information processing. However, controlling individual quantum bits (qubits) at the atomic scale remains a major challenge because conventional approaches rely on magnetic fields, which are difficult to confine to a single molecule.</description>
                    <link>https://phys.org/news/2026-07-scientists-electrical-molecule-quantum-states.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Thu, 16 Jul 2026 09:30:03 EDT</pubDate>
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                    <title>DNA origami turns secret messages into nano–Morse code that acts as multiplayer molecular encryption</title>
                    <description>Mathematics has always been at the core of securing information. From online banking to government communications, modern society relies on cryptography, in which complex mathematical algorithms transform readable information into an unreadable form to keep it secure. But as computing power grows and quantum technology advances, these mathematical safeguards are increasingly vulnerable to being broken. That&#039;s where biology stepped in.</description>
                    <link>https://phys.org/news/2026-07-dna-origami-secret-messages-nanomorse.html</link>
                    <category>Biotechnology</category>                    <pubDate>Tue, 14 Jul 2026 11:20:07 EDT</pubDate>
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                    <title>Researchers find simple solution for extending the lifespan of LEDs made from glowing quantum dots</title>
                    <description>A new study led by MIT researchers could drive the development of more energy-efficient digital displays—such as flat-screen TVs, augmented and virtual reality headsets, smartphone screens, medical imaging devices and even large-area ambient lighting surfaces—that also generate richer, brighter colors.</description>
                    <link>https://phys.org/news/2026-07-simple-solution-lifespan-quantum-dots.html</link>
                    <category>Nanophysics</category>                    <pubDate>Fri, 10 Jul 2026 14:00:06 EDT</pubDate>
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                    <title>Long-theorized electron-on-helium qubit achieves strong coupling to a single microwave photon</title>
                    <description>Quantum computers, devices that store and process information leveraging the principles of quantum mechanics, have been found to be promising for tackling some problems that cannot be solved by classical computers. Quantum computers store data in the form of qubits (i.e., quantum bits), units of information that can exist in combinations of different states, instead of being limited to a binary value (i.e., 0 or 1), like classical bits.</description>
                    <link>https://phys.org/news/2026-07-theorized-electron-helium-qubit-strong.html</link>
                    <category>General Physics</category>                    <pubDate>Wed, 08 Jul 2026 10:20:02 EDT</pubDate>
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                    <title>Ultra-compact sensor paves the way for more powerful and scalable silicon quantum processors</title>
                    <description>Researchers from the Quantum Hardware group at CIC nanoGUNE, in collaboration with the British company Quantum Motion, have demonstrated an advanced readout sensor for spin qubits that, while being more compact than previous designs, can reach the level of readout precision needed to implement quantum error correction protocols. The study has been published in the journal Nature Sensors.</description>
                    <link>https://phys.org/news/2026-07-ultra-compact-sensor-paves-powerful.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Tue, 07 Jul 2026 13:20:01 EDT</pubDate>
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                    <title>Layered ZnPS₃ emits single photons, opening new path for quantum chips</title>
                    <description>Scientists from the Faculty of Physics at the University of Warsaw, in collaboration with teams from the National University of Singapore and Radboud University in the Netherlands, have observed single-photon emission from layered two-dimensional material ZnPS₃. This discovery represents a crucial step toward establishing low-dimensional materials as a versatile platform for quantum information science. The research findings were published in the journal ACS Nano.</description>
                    <link>https://phys.org/news/2026-06-layered-znps-emits-photons-path.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 30 Jun 2026 17:10:01 EDT</pubDate>
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                    <title>Shining blue light on gold-graphene nanodots achieves wound healing trifecta</title>
                    <description>Closing wounds, burns and deep cuts isn&#039;t enough to kick-start healing. A wound needs a clean environment, free of bacterial infection and interruption. That calls for three components working together—one to kill bacteria, one to clean the wound and one to support recovery.</description>
                    <link>https://phys.org/news/2026-06-blue-gold-graphene-nanodots-wound.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Sun, 28 Jun 2026 11:40:02 EDT</pubDate>
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                    <title>Semiconductor quantum dots &#039;reawaken&#039; predicted Rabi oscillations, boosting quantum control</title>
                    <description>Physicists at Paderborn University have, for the first time, experimentally demonstrated the so-called &quot;return&quot; of Rabi oscillations in semiconductor quantum dots. The phenomenon, which was first predicted theoretically in 2007, describes the decrease in the emission intensity of the quantum dots, which are initially damped by interactions with the lattice vibrations of a solid (phonons).</description>
                    <link>https://phys.org/news/2026-06-semiconductor-quantum-dots-reawaken-rabi.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Fri, 26 Jun 2026 13:00:04 EDT</pubDate>
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                    <title>Scientists identify the origin of noise in spin qubit quantum processors</title>
                    <description>A spin qubit, in which quantum information is encoded in the spin state of an electron, is one of the most promising platforms for quantum computing. Spin qubits exhibit long coherence times and are compatible with advanced semiconductor manufacturing technologies. The leading implementation of spin qubits involves confined electrons inside quantum dots, a nanoscale semiconductor architecture that behaves like a controllable artificial atom. Recent advances have enabled high-fidelity operation of single- and two-qubit gates, exceeding the threshold required for certain surface code quantum error correction techniques.</description>
                    <link>https://phys.org/news/2026-06-scientists-noise-qubit-quantum-processors.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Sat, 06 Jun 2026 09:00:03 EDT</pubDate>
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                    <title>Supercharging solar cells: Quantum dot-molecule hybrid states enable near-maximum efficiency</title>
                    <description>Solar panels have become more efficient over the years, but even the best designs still lose a large fraction of the energy they absorb. Scientists around the world have been searching for ways to capture more energy from every ray of sunlight and unlock the true potential of solar technology.</description>
                    <link>https://phys.org/news/2026-05-supercharging-solar-cells-quantum-dot.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 25 May 2026 14:00:02 EDT</pubDate>
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                    <title>Chemical pathway unlocks next-generation infrared III–V nanocrystals</title>
                    <description>A research team led by Professor Sohee Jeong at Sungkyunkwan University has uncovered a key chemical pathway for the controlled synthesis of III–V semiconductor quantum dots, a class of next-generation infrared materials expected to play an important role in autonomous driving sensors, smart sensing systems, night-vision devices, and short-wave infrared optoelectronics.</description>
                    <link>https://phys.org/news/2026-05-chemical-pathway-generation-infrared-iiiv.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 18 May 2026 13:20:05 EDT</pubDate>
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                    <title>Mobile qubits on a chip move us a step closer to everyday quantum computers</title>
                    <description>For years, quantum computers have lived under a huge bubble of hype, promising to revolutionize numerous fields, from medicine and battery design to materials science and cybersecurity. But realizing their potential on any serious practical level will only be possible if large numbers of qubits (the basic units of information) can interact with each other with high precision and flexibility.</description>
                    <link>https://phys.org/news/2026-05-mobile-qubits-chip-closer-everyday.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Thu, 07 May 2026 12:00:01 EDT</pubDate>
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                    <title>A longstanding quantum roadblock just fell, opening existing fiber networks to ultra-secure light signals</title>
                    <description>Researchers at the Niels Bohr Institute have broken a longstanding barrier by managing to send single photons—that can&#039;t be copied or split and thus are secure—in the network of optical fibers we already have. This opens up a broad range of applications relying on secure quantum information. The research is published in the journal Nature Nanotechnology.</description>
                    <link>https://phys.org/news/2026-04-longstanding-quantum-roadblock-fell-fiber.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Thu, 30 Apr 2026 18:00:01 EDT</pubDate>
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                    <title>Molecular quantum nanosensors reveal temperature and radical signals inside living cells</title>
                    <description>Researchers at the National Institutes for Quantum Science and Technology (QST), Japan, and The University of Tokyo, Japan, in collaboration with Kyushu University, Japan, have developed a new class of biocompatible molecular quantum nanosensors (MoQNs) that operate inside living cells.</description>
                    <link>https://phys.org/news/2026-04-molecular-quantum-nanosensors-reveal-temperature.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Wed, 29 Apr 2026 14:00:03 EDT</pubDate>
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                    <title>AI automates quantum dot voltage tuning for scaling up quantum computing</title>
                    <description>Semiconductor spin qubits are a promising candidate for the building blocks of next-generation quantum computers due to their high potential for integration and compatibility with existing semiconductor technologies. Qubits—like the 0s and 1s of a traditional computer—serve as a basic unit of information for quantum computers. However, the practical realization of these computers requires a massive number of qubits, making the development of more efficient adjustment methods a critical challenge for the field.</description>
                    <link>https://phys.org/news/2026-04-ai-automates-quantum-dot-voltage.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Thu, 23 Apr 2026 18:00:01 EDT</pubDate>
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                    <title>Quantum chips could scale faster with new spin-qubit readout that reduces sensors and wiring</title>
                    <description>Quantum computers, devices that process information leveraging quantum mechanical effects, could tackle some tasks that are difficult or impossible to solve using classical computers. These systems represent data as qubits, units of information that can exist in multiple states at once, unlike the bits used by classical computers that represent data using binary values (&quot;0&quot; or &quot;1&quot;).</description>
                    <link>https://phys.org/news/2026-04-quantum-chips-scale-faster-qubit.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Thu, 23 Apr 2026 12:40:06 EDT</pubDate>
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                    <title>Perovskite quantum dots crack two big barriers, staying stable in polar solvents and growing with atomic precision</title>
                    <description>Perovskite quantum dots are considered promising materials for LEDs, photocatalysis, and future quantum light sources. Researchers at LMU Munich have managed to master two major hurdles in working with these quantum dots: their stability in solution and precise control of their growth. The results could open new avenues for the processing and application of the materials.</description>
                    <link>https://phys.org/news/2026-04-perovskite-quantum-dots-big-barriers.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 21 Apr 2026 12:20:03 EDT</pubDate>
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                    <title>Bright quantum light emission achieved at room temperature in 2D semiconductors</title>
                    <description>A joint research team led by Professor Park Kyoung-Duck and Associate Director Suh Yung Doug of the Center for Multidimensional Carbon Materials within the Institute for Basic Science (IBS) has succeeded in realizing a high-efficiency quantum light source that emits bright lights even at room temperature. The study is published in the journal Science Advances.</description>
                    <link>https://phys.org/news/2026-04-bright-quantum-emission-room-temperature.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Sat, 18 Apr 2026 09:00:01 EDT</pubDate>
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                    <title>&#039;Poor man&#039;s Majoranas&#039; can be used as quantum spin probes</title>
                    <description>A Majorana fermion is a particle that would be identical to its antiparticle. Such an object has not yet been found. However, certain solid materials exhibit analogous behavior as if Majorana fermions were present through collective excitations of the system called quasiparticles.</description>
                    <link>https://phys.org/news/2026-04-poor-majoranas-quantum-probes.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Sat, 11 Apr 2026 08:00:04 EDT</pubDate>
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                    <title>A tiny detector for microwave photons could advance quantum tech</title>
                    <description>Detecting a single particle of light is hard; detecting a single microwave photon is even harder. Microwave photons, the tiny packets of electromagnetic radiation used in current technologies like Wi-Fi and radar, carry far less energy than visible light. They are about 100,000 times weaker than optical photons.</description>
                    <link>https://phys.org/news/2026-04-tiny-detector-microwave-photons-advance.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Fri, 03 Apr 2026 14:00:05 EDT</pubDate>
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                    <title>Next-generation optical sensor can read photon spin across UV-to-infrared wavelengths</title>
                    <description>A research team led by Professor Jiwoong Yang of the Department of Energy Science and Engineering at DGIST has developed next-generation optical sensor technology capable of precisely detecting not only the intensity and wavelength of light but also its rotational direction—the spin information of photons. The team successfully implemented a quantum-dot-based optical sensor that can detect circularly polarized light (CPL) across an ultra-wide spectral range—from ultraviolet to short-wave infrared—demonstrating photodetection performance comparable to that of commercial silicon optical sensors. The paper is published in Advanced Materials.</description>
                    <link>https://phys.org/news/2026-03-generation-optical-sensor-photon-uv.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 30 Mar 2026 18:00:04 EDT</pubDate>
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