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                    <title>Phys.org - latest science and technology news stories</title>
            <link>https://phys.org/</link>
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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>Electric field reverses phonon chirality and spin direction in ferroelectric crystal</title>
                    <description>Chiral phonons are groups of atoms that move in a circular direction when excited by an energy source, such as heat. As the phonons move through a material, they propagate that circular motion, or angular momentum, through the material. The angular momentum serves as the source of spin, and the chirality dictates the direction of the spin, enabling spin control in spintronics.</description>
                    <link>https://phys.org/news/2026-08-electric-field-reverses-phonon-chirality.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 05 Aug 2026 15:00:06 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>Diamond&#039;s newfound defect may tame vibrations that hinder quantum light sources</title>
                    <description>Researchers in the Department of Electrical and Computer Engineering at the University of Illinois Urbana-Champaign have discovered a new type of quantum light emitter in diamonds that could help overcome a number of challenges facing quantum technologies.</description>
                    <link>https://phys.org/news/2026-07-diamond-newfound-defect-vibrations-hinder.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Fri, 31 Jul 2026 11:40:08 EDT</pubDate>
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                    <title>Gold-MXene catalyst converts nitrate to ammonia using sunlight and 1.5 volts</title>
                    <description>Plants need nitrogen fertilizers, which are usually ammonia-based. Ammonia is therefore one of the most important chemical products. However, its production is currently extremely energy-intensive. An international team from TU Wien and Soochow University in China has developed a novel catalyst that can convert nitrate from wastewater into ammonia much more efficiently than before—powered by sunlight and about 1.5 volts.</description>
                    <link>https://phys.org/news/2026-07-gold-mxene-catalyst-nitrate-ammonia.html</link>
                    <category>Analytical Chemistry</category>                    <pubDate>Wed, 29 Jul 2026 15:00:08 EDT</pubDate>
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                    <title>New quantum chip architecture could use built-in vibrations to link distant qubits</title>
                    <description>A new concept from Warwick researchers could help solve one of the biggest challenges to building large-scale quantum computers: enabling communication between vast numbers of quantum bits (qubits) over long distances across a single chip.</description>
                    <link>https://phys.org/news/2026-07-quantum-chip-architecture-built-vibrations.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Mon, 27 Jul 2026 17:10:01 EDT</pubDate>
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                    <title>Engineers observe quantum heat waves at room temperature</title>
                    <description>Efficient heat management in solids is key to advancing the next generation of electronics. However, wave-like heat movement—known as phonon focusing—had been observed only at extremely low, or cryogenic, temperatures, limiting its study and practical use.</description>
                    <link>https://phys.org/news/2026-07-quantum-room-temperature.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Thu, 23 Jul 2026 17:30:01 EDT</pubDate>
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                    <title>Metallic rutile oxides break the rules of cooling</title>
                    <description>Physicists have long puzzled over a strange contradiction inside a family of minerals called rutile oxides. These materials all share the same crystal structure—but while some of them, like titanium dioxide, are firmly insulating, others, like ruthenium dioxide, conduct electricity like a metal. So far, physicists have had little idea of why this happens.</description>
                    <link>https://phys.org/news/2026-07-metallic-rutile-oxides-cooling.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Tue, 07 Jul 2026 09:00:09 EDT</pubDate>
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                    <title>Disorder creates direction-dependent optics in compound semiconductors</title>
                    <description>An international research team has demonstrated that the intrinsic disorder of the compound semiconductor CuInSnS₄ can be exploited to influence its optical properties. While the atomic vibrations also sense the local disorder, their response is averaged over many different local environments and therefore appears isotropic, as expected for a cubic crystal.</description>
                    <link>https://phys.org/news/2026-06-disorder-optics-compound-semiconductors.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Mon, 29 Jun 2026 18:10:02 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>Laser pulses capture unexplored polaronic states</title>
                    <description>In an international experiment, researchers observed Jahn–Teller polarons—quasiparticles that could play an important role in future ultrafast spintronic devices. These polarons emerged within the crystal lattice of cobalt oxide that had been activated by carefully tailored laser pulses.</description>
                    <link>https://phys.org/news/2026-06-laser-pulses-capture-unexplored-polaronic.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Thu, 25 Jun 2026 17:40:02 EDT</pubDate>
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                    <title>Nanotube-based thermoelectrics open a new pathway to waste-heat energy conversion</title>
                    <description>Whenever someone asks ChatGPT a question, heat is generated somewhere in the server room—a data center. When an electric vehicle battery generates heat during operation, the heat must be managed continuously. Manufacturing processes also generate large amounts of waste heat, much of which is simply released into the atmosphere. But what if we could convert this waste heat back into electricity? Recently, a research team in Korea brought this possibility one step closer to reality.</description>
                    <link>https://phys.org/news/2026-06-nanotube-based-thermoelectrics-pathway-energy.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 22 Jun 2026 19:20:01 EDT</pubDate>
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                    <title>Laser pulses set layered metals vibrating 1 trillion times per second, revealing electron-driven motion</title>
                    <description>How does light turn into motion within a metal? A team of researchers from European XFEL, the University of Potsdam and other participating institutions has shown that ultrashort optical laser pulses can trigger extremely rapid lattice vibrations in periodically layered metal structures—not primarily by heating the atomic lattice, but through the pressure exerted by hot electrons. The results are published in Nature Communications.</description>
                    <link>https://phys.org/news/2026-06-laser-pulses-layered-metals-vibrating.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Thu, 18 Jun 2026 17:10:03 EDT</pubDate>
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                    <title>Physicists observe synchronized quantum dance of excitons and phonons</title>
                    <description>An international team of researchers has reported a major advance in understanding quantum dynamics in semiconductor materials. They directly observed how excitons and phonons evolve together in perovskite nanocrystals, revealing a fully coherent quantum dance between light-induced electronic excitations and crystal lattice vibrations. They published their findings in Nature Communications.</description>
                    <link>https://phys.org/news/2026-06-physicists-synchronized-quantum-excitons-phonons.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Tue, 09 Jun 2026 19:40:01 EDT</pubDate>
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                    <title>Light pulses uncover Higgs mode that reshapes perovskite crystal symmetry</title>
                    <description>Waves of light and sound interact to drive electronic and structural changes in a perovskite crystal. At the atomic scale, nothing is ever truly still. Materials that appear perfectly rigid and motionless to the naked eye are in fact swarms of vibrating atoms. This motion is generally random and uncoordinated, but with the right input, the atoms in certain materials will start to move together, vibrating in sync.</description>
                    <link>https://phys.org/news/2026-06-pulses-uncover-higgs-mode-reshapes.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Fri, 05 Jun 2026 16:00:01 EDT</pubDate>
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                    <title>Chip-scale &#039;acoustic atom&#039; controls sound waves to imitate atomic energy levels and advance computing</title>
                    <description>For every action, there is an equal and opposite reaction. What goes up must come down. Physical laws like these govern all of the natural world—except for the tiny internal components of today&#039;s microprocessors, which operate according to the unique and complicated rules of quantum physics.</description>
                    <link>https://phys.org/news/2026-06-chip-scale-acoustic-atom-imitate.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 03 Jun 2026 13:00:04 EDT</pubDate>
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                    <title>Metamaterials enable control of heat transfer at nanoscale, potentially transforming energy and electronics</title>
                    <description>Heat behaves in predictable ways: a hot cup of coffee cools, a laptop warms your hands, the sun heats Earth. But at scales thousands of times smaller than a human hair, those rules begin to break down, and scientists are learning how to take advantage of that.</description>
                    <link>https://phys.org/news/2026-05-metamaterials-enable-nanoscale-potentially-energy.html</link>
                    <category>Nanophysics</category>                    <pubDate>Wed, 27 May 2026 17:40:05 EDT</pubDate>
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                    <title>Tuning into quantum sounds: Acoustic devices simplify quantum sensors</title>
                    <description>When a singer belts out a tune while a guitar player strums along, sound waves travel through the air, driving collective oscillations of the molecules within. Meanwhile, at the quantum level, something similar is going on. Atoms inside materials, everything from our bodies to metals and more, naturally jiggle around, creating tiny vibrational waves that ripple across the material. These vibrations are known as phonons: the quantum version of sound waves.</description>
                    <link>https://phys.org/news/2026-05-tuning-quantum-acoustic-devices-sensors.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 25 May 2026 11:40:02 EDT</pubDate>
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                    <title>Honey-like heat flow: A new heat transport regime discovered in ultrathin semiconductors</title>
                    <description>Controlling heat flow is a major challenge for many technologies. In electronic and photonic devices, for example, heat dissipation can limit the performance and efficiency, as well as their potential for further miniaturization. At the same time, two-dimensional (2D) materials, which are made of layers just a few atoms thick, have emerged as a promising platform in these fields. For example, 2D semiconductors are expected to be used in conduction channels of future transistors. However, their thermal behavior remains difficult to predict and control.</description>
                    <link>https://phys.org/news/2026-05-honey-regime-ultrathin-semiconductors.html</link>
                    <category>Nanophysics</category>                    <pubDate>Fri, 15 May 2026 09:20:01 EDT</pubDate>
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                    <title>Good vibrations for quantum communications: Engineers couple single phonon to single atomic spin</title>
                    <description>Researchers at the Harvard John A. Paulson School of Engineering and Applied Sciences (SEAS) have demonstrated, for the first time, a single quantum of vibrational energy interacting with a single atomic spin, seeding a pathway to quantum technologies that use sound as an information carrier, instead of light or electricity. The results are published in Nature.</description>
                    <link>https://phys.org/news/2026-05-good-vibrations-quantum-communications-couple.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Sun, 10 May 2026 17:00:03 EDT</pubDate>
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                    <title>Why twisted bilayer graphene stops superconducting near high-dielectric substrates</title>
                    <description>Superconductors are materials that can conduct electricity with a resistance of zero. In so-called conventional superconductors, this occurs at low temperatures when electrons become bound into pairs, known as Cooper pairs.</description>
                    <link>https://phys.org/news/2026-05-bilayer-graphene-superconducting-high-dielectric.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 06 May 2026 16:30:01 EDT</pubDate>
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                    <title>Inexpensive material compresses light, paving the way for photonic microcircuits in the terahertz range</title>
                    <description>A two-dimensional lamellar crystal composed of atomically thin layers of lead iodide (PbI2) could be used to manufacture a new generation of circuits that use light and mechanical vibrations (rather than electrons) to transmit information in the terahertz frequency range.</description>
                    <link>https://phys.org/news/2026-05-inexpensive-material-compresses-paving-photonic.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Tue, 05 May 2026 15:50:01 EDT</pubDate>
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                    <title>Elastic rules may explain why nematic crystals look ordered and disordered at once</title>
                    <description>Electronic nematicity is a phase of some crystalline solids in which electrons&#039; collective properties, such as charge or spin densities, organize themselves into ordered patterns, lowering the crystal&#039;s rotational symmetry. This phase is found across a wide range of diverse materials, making nematicity crucial to understanding emergent solid-state phenomena, such as unconventional superconductivity and magnetism.</description>
                    <link>https://phys.org/news/2026-05-elastic-nematic-crystals-disordered.html</link>
                    <category>General Physics</category>                    <pubDate>Tue, 05 May 2026 13:30:01 EDT</pubDate>
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                    <title>Magnon lifetime extended 100x paves the way for mini quantum computers</title>
                    <description>Magnons are tiny waves in magnetization that travel through solid magnetic materials, much like the ripples that spread across a pond when a stone is thrown into it. Unlike photons, which travel through empty space or optical fibers, magnons propagate within a magnetic solid. Their wavelengths can be reduced to the nanometer range, meaning that magnonic circuits could, in principle, fit onto a chip no larger than those found in today&#039;s smartphones. Furthermore, as an excitation of a solid, a magnon naturally couples to numerous other fundamental quasi-particles—phonons, photons and others—making it an ideal building block for hybrid quantum systems and quantum metrology.</description>
                    <link>https://phys.org/news/2026-05-magnon-lifetime-100x-paves-mini.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Mon, 04 May 2026 13:00:03 EDT</pubDate>
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                    <title>This ultracold quantum device turns electricity into something far stranger that could unlock sound-based lasers</title>
                    <description>Researchers at McGill University have developed a novel device that generates sound-like particles known as phonons at extremely cold temperatures. The technology could be used to create phonon lasers, with possible applications in communications and medical diagnostics.</description>
                    <link>https://phys.org/news/2026-04-ultracold-quantum-device-electricity-stranger.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 27 Apr 2026 19:00:04 EDT</pubDate>
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                    <title>One-way phonon synchronization could survive noise and defects, theoretical physicists suggest</title>
                    <description>A novel approach for realizing the one-way quantum synchronization of phonons has been proposed by three theoretical physicists at RIKEN. Importantly, this method is remarkably resilient against practical challenges such as imperfections and environmental noise. Their paper, &quot;Nonreciprocal quantum synchronization,&quot; is published in Nature Communications.</description>
                    <link>https://phys.org/news/2026-04-phonon-synchronization-survive-noise-defects.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Fri, 24 Apr 2026 08:40:01 EDT</pubDate>
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                    <title>Soundwaves settle debate about elusive quantum particle</title>
                    <description>It was a head-spinning discovery. In 2018, researchers in Japan claimed to find concrete evidence of an elusive particle, a Majorana fermion, in a quantum spin liquid called ruthenium trichloride. Majoranas are highly sought-after by quantum materials scientists because when a pair are localized, or trapped, they can securely encode information and form a stable qubit—the building block of quantum computing.</description>
                    <link>https://phys.org/news/2026-04-soundwaves-debate-elusive-quantum-particle.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Wed, 22 Apr 2026 16:40:02 EDT</pubDate>
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                    <title>Alternating atomic layers enable rare electron pairing mechanism in new unconventional superconductor</title>
                    <description>Superconductors, materials that can conduct electricity with a resistance of zero, have proved to be highly promising for the development of quantum technologies, medical imaging devices, particle accelerators and other advanced technologies. These materials can be divided into two broad categories: conventional and unconventional superconductors.</description>
                    <link>https://phys.org/news/2026-04-alternating-atomic-layers-enable-rare.html</link>
                    <category>Superconductivity</category>                    <pubDate>Tue, 21 Apr 2026 11:20:01 EDT</pubDate>
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                    <title>Search for dark matter intensifies as leading detector reaches milestone</title>
                    <description>Deep underground in a Canadian mine, a refrigerator nearly 1,000 times colder than outer space has just reached its target temperature—a milestone that brings scientists one step closer to potentially detecting dark matter, the invisible material thought to make up most of the mass in the universe.</description>
                    <link>https://phys.org/news/2026-04-dark-detector-milestone.html</link>
                    <category>General Physics</category>                    <pubDate>Fri, 10 Apr 2026 09:40:04 EDT</pubDate>
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                    <title>Momentum-engineered photonic states make bulk silicon shine</title>
                    <description>An international team of researchers, led by scientists from the University of California, Irvine, has demonstrated a fundamentally new way to make silicon emit light—overcoming one of the most persistent limitations in modern electronics and photonics. In their work appearing in Nano Letters, the scientists show that silicon, long considered an inefficient light emitter due to its indirect bandgap, can be transformed into a bright, broadband source. The researchers produced emissions from silicon in its conventional bulk form, without modification to its composition or structure. Instead, the breakthrough comes from modifying the properties of light itself.</description>
                    <link>https://phys.org/news/2026-04-momentum-photonic-states-bulk-silicon.html</link>
                    <category>Nanophysics</category>                    <pubDate>Wed, 08 Apr 2026 18:30:01 EDT</pubDate>
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                    <title>Mechanical inputs boost diamond quantum sensor states as Q factor tops one million</title>
                    <description>Most people think of diamonds as high-end adornments. Not Ania Bleszynski Jayich. The UC Santa Barbara physicist sees diamonds, which she grows in the UC Quantum Foundry, as a potentially powerful foundation for quantum sensors. Sensors are currently much farther along in their development than other potential quantum applications. Diamond sensors are particularly promising because diamonds require relatively few quantum bits (qubits) to operate, whereas a quantum computer, for instance, requires more than 100,000, perhaps as many as a million, qubits to handle error correction, one of the main hurdles for quantum computing.</description>
                    <link>https://phys.org/news/2026-04-mechanical-boost-diamond-quantum-sensor.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 06 Apr 2026 16:30:01 EDT</pubDate>
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