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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>Photonic time crystals unlock ultrafast control of light in the terahertz range</title>
                    <description>An international team of researchers from École Polytechnique, Collège de France and Helmholtz-Zentrum Dresden-Rossendorf (HZDR) has achieved a world first: the experimental realization of an all-optical photonic time crystal (PTC), a material whose optical properties can be strongly and periodically modulated over ultrafast timescales.</description>
                    <link>https://phys.org/news/2026-07-photonic-crystals-ultrafast-terahertz-range.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Thu, 30 Jul 2026 19:40:04 EDT</pubDate>
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                    <title>Scientists have found a new way molecules can cooperate at room temperature</title>
                    <description>What if glowing molecules could synchronize, much like fireflies flashing in unison? Researchers have discovered that molecules confined within tiny gold nanostructures can behave collectively, coordinating their interactions even under conditions where this was previously thought impossible. The finding challenges long standing assumptions about how optical coherence forms and opens new possibilities for highly sensitive sensors, molecular photonics, and future quantum technologies capable of operating at room temperature.</description>
                    <link>https://phys.org/news/2026-07-scientists-molecules-cooperate-room-temperature.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 30 Jul 2026 18:10:02 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>Self-cleaning nanoscale sensor could transform personalized medicine</title>
                    <description>Imagine a smart bandage that could continuously monitor an infected wound, alerting doctors when bacteria spread or when treatment begins to work. That vision is one step closer to reality with new research from Virginia Tech.</description>
                    <link>https://phys.org/news/2026-07-nanoscale-sensor-personalized-medicine.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Tue, 28 Jul 2026 11:20:05 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>Physicists create first room-temperature quantum material</title>
                    <description>Quantum materials could transform technologies ranging from powerful computers and ultrasecure communications to advanced energy systems. But there has always been one major obstacle.</description>
                    <link>https://phys.org/news/2026-07-physicists-room-temperature-quantum-material.html</link>
                    <category>Quantum Physics</category>                    <pubDate>Wed, 15 Jul 2026 11:00:35 EDT</pubDate>
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                    <title>DNA-based nanoswitch can flip in milliseconds and stay in one state for days without continuous forcing</title>
                    <description>Scientists have engineered a nanoscale switch using DNA &quot;origami.&quot; Inspired by macroscale mechanical switches, the device achieves long-term functionality without the continuous forcing mechanism that past versions required while remaining capable of fast switching. The paper is published in the journal Science Robotics.</description>
                    <link>https://phys.org/news/2026-07-dna-based-nanoswitch-flip-milliseconds.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Wed, 01 Jul 2026 14:40:09 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>Artificial &#039;leaf&#039; powers wireless biomedical device</title>
                    <description>Plants convert light into energy efficiently through photosynthesis—an ability that scientists and engineers still struggle to match with electronic devices. Recently, researchers have looked beyond traditional semiconductor materials to create devices using a promising class of materials called nanoplasmonics. These tiny metal structures can absorb and concentrate optical energy and generate energetic charge carriers.</description>
                    <link>https://phys.org/news/2026-06-artificial-leaf-powers-wireless-biomedical.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 25 Jun 2026 12:00:03 EDT</pubDate>
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                    <title>Graphene plasmon cavities enable advanced and scalable terahertz photodetectors</title>
                    <description>How could we noninvasively distinguish between healthy and cancerous tissue? And how could we increase the speed of wireless communications? These two seemingly unrelated questions may share the same answer: terahertz (THz) light. Spanning frequencies between 0.3 and 20 THz, THz light interacts with matter without causing damage and allows for faster data transfer than radio waves. It is thus ideal for advancing many applications in biomedicine and telecommunications, for which simple yet sensitive and fast detectors are needed.</description>
                    <link>https://phys.org/news/2026-06-graphene-plasmon-cavities-enable-advanced.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Tue, 23 Jun 2026 18:20:03 EDT</pubDate>
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                    <title>Experiment upends beliefs on how electrons actually behave in warm dense matter</title>
                    <description>Researchers at European XFEL, Helmholtz-Zentrum Dresden-Rossendorf (HZDR), Rostock University and other collaborating institutions have used high-precision experiments to demonstrate that the most widely used models for the behavior of electrons in warm dense matter are inaccurate. Warm dense matter is challenging to study, but also is of key importance for a plethora of research, including the investigation of planetary interiors, materials science and laser fusion experiments. The study is published in Physical Review Letters.</description>
                    <link>https://phys.org/news/2026-06-upends-beliefs-electrons-dense.html</link>
                    <category>Plasma Physics</category>                    <pubDate>Mon, 22 Jun 2026 18:20:06 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>Q&amp;A: Combating antibiotic resistance with nanotechnology, robotics and AI</title>
                    <description>Aeron Tynes Hammack, a physicist by training and currently interim facility director of the Nanofabrication Facility at the Molecular Foundry, likes to work with nanoscale objects to better understand the world and solve problems—but he doesn&#039;t restrict himself to one category of tiny stuff. He helps develop qubits for quantum computers and viral therapies to combat infectious diseases.</description>
                    <link>https://phys.org/news/2026-06-qa-combating-antibiotic-resistance-nanotechnology.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Tue, 09 Jun 2026 18:20:06 EDT</pubDate>
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                    <title>Electrical &#039;knob&#039; can switch light on, off and tune intensity at the nanoscale</title>
                    <description>Physicists from Emory University have led work to develop a microscopic, nonlinear light source that can be switched on, off or tuned to a particular intensity by an electrical &quot;knob.&quot; The paper is published in the journal Optica, and could aid in the design of smaller, more flexible technologies for communications, sensing and quantum computing.</description>
                    <link>https://phys.org/news/2026-05-electrical-knob-tune-intensity-nanoscale.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Thu, 28 May 2026 17:50:01 EDT</pubDate>
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                    <title>New shell helps gold nanoparticles keep shape under laser heat longer</title>
                    <description>Gold nanoparticles, which are about one-thousandth the width of a human hair, can convert light they receive from a laser into heat. This capacity, known in medicine as photothermal therapy, is effective at destroying cancer cells without harming the surrounding healthy tissue. It&#039;s one of the techniques the scientific community is exploring in depth as an alternative chemotherapy, as it is less aggressive.</description>
                    <link>https://phys.org/news/2026-05-shell-gold-nanoparticles-laser-longer.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Tue, 19 May 2026 15:00:08 EDT</pubDate>
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                    <title>Chemists capture light-matter hybrid particles traveling long distances</title>
                    <description>To capture a crisp image of a hummingbird in flight, which can flap its wings up to 200 times per second, a photographer needs a camera with an extremely fast shutter speed. But what if your target is smaller than a single chromosome and can travel at velocities approaching lightspeed? Conventional cameras, no matter how advanced, are limited by the nature of light. You would need a special device and an innovative method to film such a tiny, speedy subject.</description>
                    <link>https://phys.org/news/2026-05-chemists-capture-hybrid-particles-distances.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 04 May 2026 15:40:09 EDT</pubDate>
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                    <title>Sprinkling nanoparticles on spintronics</title>
                    <description>Today, I want to walk you through a deceptively simple innovation from the lab at Loughborough University (PI: Prof Marco Peccianti): what happens when we decorate a spintronic heterostructure with a sparse layer of plasmonic nanoparticles? This isn&#039;t just a lab curiosity—it&#039;s a step toward making terahertz sources more efficient, compact, and practical for real-world applications like high-speed communications, noninvasive imaging, and advanced spectroscopy.</description>
                    <link>https://phys.org/news/2026-04-sprinkling-nanoparticles-spintronics.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Mon, 20 Apr 2026 18:00:06 EDT</pubDate>
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                    <title>Gold nanorod makes spinning light when struck off-center by an electron beam</title>
                    <description>Light, as we usually conceive of it, is defined by the astonishing velocity at which it moves from one point to another. For example, in just one second, light can travel most of the distance between Earth and the moon. This property is what makes light useful for communication, which we expect to happen at lightning speed in the modern age.</description>
                    <link>https://phys.org/news/2026-04-gold-nanorod-struck-center-electron.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 13 Apr 2026 09:40:01 EDT</pubDate>
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                    <title>First microlasers capable of detecting individual molecules and ions could one day aid diagnosis</title>
                    <description>Scientists have created the first microlasers capable of detecting individual molecules and even single atomic ions, a breakthrough that could significantly advance early disease diagnosis and molecular-scale medical testing. Researchers at the University of Exeter&#039;s Living Systems Institute have published their work in Nature Photonics. The paper opens up new possibilities for microlaser biosensing technology, including &quot;lab-on-a-chip&quot; technology capable of instant medical testing and diagnosis.</description>
                    <link>https://phys.org/news/2026-03-microlasers-capable-individual-molecules-ions.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Wed, 25 Mar 2026 06:00:05 EDT</pubDate>
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                    <title>Breathing in nanoparticles could enable a 10-minute pneumonia check at point of care</title>
                    <description>Diagnosing some diseases could be as easy as breathing into a tube. MIT engineers have developed a test to detect disease-related compounds in a patient&#039;s breath. The new test could provide a faster way to diagnose pneumonia and other lung conditions. Rather than sit for a chest X-ray or wait hours for a lab result, a patient may one day take a breath test and get a diagnosis within minutes.</description>
                    <link>https://phys.org/news/2026-03-nanoparticles-enable-minute-pneumonia.html</link>
                    <category>Bio &amp; Medicine</category>                    <pubDate>Mon, 16 Mar 2026 17:00:03 EDT</pubDate>
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                    <title>Miniature laser technology could bring lab testing into your home</title>
                    <description>A research team at Chalmers University of Technology, Sweden, has developed new laser technology that could lead to tiny, cost-effective biosensors. The sensors integrate lasers and optics together on a centimeter-sized chip, which could move testing from hospitals to patients&#039; homes. This, in turn, would free up hospital beds and reduce visits to clinics.</description>
                    <link>https://phys.org/news/2026-03-miniature-laser-technology-lab-home.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Tue, 10 Mar 2026 09:40:05 EDT</pubDate>
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                    <title>Shrinking the carbon footprint of chemical manufacturing with lasers and solar radiation</title>
                    <description>Researchers have found a way to use solar energy to power a key chemical reaction that drives many manufacturing industries. This new method can significantly reduce the energy required to run these operations, eliminate harsh oxidizing byproducts and minimize carbon emissions.</description>
                    <link>https://phys.org/news/2026-03-carbon-footprint-chemical-lasers-solar.html</link>
                    <category>Materials Science</category>                    <pubDate>Thu, 05 Mar 2026 17:00:01 EST</pubDate>
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                    <title>Tuned nanocrystals speed light-driven reactions by matching molecular vibrations</title>
                    <description>Adjusting the size and chemistry of nanocrystals within an ultrathin surface can speed up light-driven chemical reactions, according to a University of Michigan Engineering study published in the Journal of the American Chemical Society. The new method works by matching the crystals&#039; electronic rhythm to the internal vibrations of target molecules.</description>
                    <link>https://phys.org/news/2026-02-tuned-nanocrystals-driven-reactions-molecular.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 17 Feb 2026 11:46:49 EST</pubDate>
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                    <title>Terahertz microscope reveals the motion of superconducting electrons</title>
                    <description>You can tell a lot about a material based on the type of light shining at it: Optical light illuminates a material&#039;s surface, while X-rays reveal its internal structures and infrared captures a material&#039;s radiating heat. Now, MIT physicists have used terahertz light to reveal inherent, quantum vibrations in a superconducting material, which have not been observable until now.</description>
                    <link>https://phys.org/news/2026-02-terahertz-microscope-reveals-motion-superconducting.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Wed, 04 Feb 2026 11:00:06 EST</pubDate>
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                    <title>Reshaping gold leads to new electronic and optical properties</title>
                    <description>By changing the physical structure of gold at the nanoscale, researchers can drastically change how the material interacts with light—and, as a result, its electronic and optical properties. This is shown by a study from Umeå University published in Nature Communications.</description>
                    <link>https://phys.org/news/2026-02-reshaping-gold-electronic-optical-properties.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 02 Feb 2026 14:46:38 EST</pubDate>
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                    <title>&#039;Spectral slimming&#039; yields ultranarrow plasmons in single metal nanoparticles</title>
                    <description>Researchers have developed a new strategy to overcome a long-standing limitation in plasmonic loss by reshaping light–matter interactions through substrate engineering.</description>
                    <link>https://phys.org/news/2026-01-spectral-slimming-yields-ultranarrow-plasmons.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Tue, 27 Jan 2026 14:28:26 EST</pubDate>
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                    <title>Gold &#039;supraballs&#039; nearly double solar energy absorption in tests</title>
                    <description>Sunbeams contain a lot of energy. But current technology for harvesting solar power doesn&#039;t capture as much as it could. Now, in ACS Applied Materials &amp; Interfaces, researchers report that gold nanospheres, named supraballs, can absorb nearly all wavelengths in sunlight—including some that traditional photovoltaic materials miss. Applying a layer of supraballs onto a commercially available electricity converter demonstrated that the technology nearly doubled solar energy absorption compared to traditional materials.</description>
                    <link>https://phys.org/news/2026-01-gold-supraballs-solar-energy-absorption.html</link>
                    <category>Nanomaterials</category>                    <pubDate>Tue, 27 Jan 2026 12:47:20 EST</pubDate>
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                    <title>Ultrafast light switches use atomically thin semiconductors for rapid optical control</title>
                    <description>A nanostructure made of silver and an atomically thin semiconductor layer can be turned into an ultrafast switching mirror device that may function as an optical transistor—with a switching speed around 10,000 times faster than an electronic transistor.</description>
                    <link>https://phys.org/news/2026-01-ultrafast-atomically-thin-semiconductors-rapid.html</link>
                    <category>Nanophysics</category>                    <pubDate>Wed, 21 Jan 2026 14:35:57 EST</pubDate>
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                    <title>Sunlight-driven nanoparticles enable cleaner ammonia synthesis at room temperature</title>
                    <description>Ammonia (NH3) is a colorless chemical compound comprised of nitrogen and hydrogen that is widely used in agriculture and in industrial settings. Among other things, it is used to produce fertilizers, as well as cleaning products and explosives.</description>
                    <link>https://phys.org/news/2025-12-sunlight-driven-nanoparticles-enable-cleaner.html</link>
                    <category>Analytical Chemistry</category>                    <pubDate>Wed, 31 Dec 2025 09:40:01 EST</pubDate>
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                    <title>Flat-band ultrastrong coupling between phonons and plasmons observed for first time</title>
                    <description>Researchers from CIC nanoGUNE, in collaboration with the Donostia International Physics Center (DIPC) and the Center for Materials Physics (CFM), have experimentally observed and theoretically verified flat-band ultrastrong coupling between optical phonons and surface plasmon polaritons. Published in Nature Materials, the study reveals a previously unexplored regime of light–matter interaction with potential applications in polariton-driven chemistry, materials science, nanophotonics, and quantum engineering.</description>
                    <link>https://phys.org/news/2025-12-flat-band-ultrastrong-coupling-phonons.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 18 Dec 2025 11:40:01 EST</pubDate>
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