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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>Nano-optics: New mechanism for channeling light waves discovered in natural hyperbolic materials</title>
                    <description>Researchers at the 4th Physics Institute of the University of Stuttgart and the Istituto Italiano di Tecnologia (IIT) in Milan have demonstrated a new mechanism for directing light in a naturally hyperbolic van der Waals material without conventional nanofabricated waveguides. The discovery opens new possibilities for integrated photonics, on-chip optical communication and future quantum technologies. The paper is published in the journal Nature Nanotechnology.</description>
                    <link>https://phys.org/news/2026-08-nano-optics-mechanism-channeling-natural.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 04 Aug 2026 14:40:03 EDT</pubDate>
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                    <title>Pixel patterns harness diffraction for faster, more accurate nanoscale 3D printing</title>
                    <description>Researchers at the George W. Woodruff School of Mechanical Engineering have developed a new approach to nanoscale 3D printing that improves both speed and fidelity, overcoming a challenge that has limited the technology&#039;s broader use in manufacturing.</description>
                    <link>https://phys.org/news/2026-08-pixel-patterns-harness-diffraction-faster.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 03 Aug 2026 16:20:02 EDT</pubDate>
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                    <title>New twist on the Einstein problem reveals unexpected physics</title>
                    <description>A shape that captured worldwide attention for solving a decades-old mathematical puzzle has returned to the spotlight. While the shape&#039;s properties allowed it to solve previous puzzles, little is known about its other associated properties, creating opportunities for further discovery. These unexplored properties may also help solve new physics mysteries, such as how to twist light into striking chiral patterns.</description>
                    <link>https://phys.org/news/2026-07-einstein-problem-reveals-unexpected-physics.html</link>
                    <category>General Physics</category>                    <pubDate>Wed, 29 Jul 2026 05:00:04 EDT</pubDate>
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                    <title>World-first neutron lens brings sharp focus to structures inside materials and objects</title>
                    <description>Researchers at Paul Scherrer Institute (PSI) have developed the world&#039;s first achromatic lens for neutron imaging. The lens overcomes a longstanding obstacle in the field: focusing neutrons of different wavelengths well enough to form a sharp, magnified image. With the lens, researchers can now image thick samples and follow processes inside bulky equipment such as furnaces, cryostats or pressure cells.</description>
                    <link>https://phys.org/news/2026-07-world-neutron-lens-sharp-focus.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Tue, 14 Jul 2026 12:20:06 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>Teaching AI to design optical surfaces using real-world imperfections</title>
                    <description>Designing surfaces that precisely control how light behaves at the nanoscale is tricky. Optical Fourier surfaces, which are nanostructured gratings that redistribute light into specific directions and wavelengths, hold enormous potential for compact spectrometers, augmented-reality displays, and advanced sensors. However, their standard design process relies on computer simulations that assume idealized conditions such as single-angle illumination and the absence of fabrication imperfections—a far cry from reality.</description>
                    <link>https://phys.org/news/2026-06-ai-optical-surfaces-real-world.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 04 Jun 2026 15:20:05 EDT</pubDate>
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                    <title>Strain creates moiré 2D materials without twisting or stacking, opening more scalable route</title>
                    <description>Cornell researchers have developed a new way to create moiré patterns—atomic-scale structures that can give materials unusual quantum behaviors—without relying on the traditionally used difficult-to-control twisting and stacking methods. The study is published in the Proceedings of the National Academy of Sciences.</description>
                    <link>https://phys.org/news/2026-06-strain-moir-2d-materials-stacking.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 02 Jun 2026 19:40:02 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>A new light-based sensor could help make ultrasensitive disease testing more portable</title>
                    <description>When we think about highly sensitive medical testing, we often imagine a hospital laboratory filled with large instruments, trained technicians, and carefully controlled conditions. This is especially true for optical biosensing, where scientists try to detect extremely small changes caused by biomolecules binding to a sensor surface.</description>
                    <link>https://phys.org/news/2026-05-based-sensor-ultrasensitive-disease-portable.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Thu, 21 May 2026 17:40:01 EDT</pubDate>
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                    <title>&#039;Implosion carving&#039; shrinks 3D photonic devices 2,000-fold for visible-light computing</title>
                    <description>Using a new technique that can create vacancies at any site across a material and then shrink it to about 1/2,000 of its original volume, MIT researchers have designed nanotechnology devices that could be used for optical computing and other applications involving the manipulation of visible light.</description>
                    <link>https://phys.org/news/2026-05-implosion-3d-photonic-devices-visible.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 12 May 2026 10:40:08 EDT</pubDate>
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                    <title>With a swipe of a magnet, microscopic &#039;magno-bots&#039; perform complex maneuvers</title>
                    <description>Under a microscope, a bouquet of lollipop-like structures, each smaller than a grain of sand, waves gently in a Petri dish of liquid. Suddenly, they snap together, like the jaws of a Venus flytrap, as a scientist waves a small magnet over the dish. What was previously an assemblage of tiny passive structures has transformed instantly into an active robotic gripper. The lollipop gripper is one demonstration of a new type of soft magnetic hydrogel developed by engineers at MIT and their collaborators at EPFL and the University of Cincinnati.</description>
                    <link>https://phys.org/news/2026-04-swipe-magnet-microscopic-magno-bots.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 28 Apr 2026 11:00:03 EDT</pubDate>
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                    <title>Cracking a long-standing problem in high-entropy alloy nanoparticle synthesis</title>
                    <description>Composed of five or more elements in nearly equal amounts, high-entropy alloys (HEAs) have emerged as promising catalysts due to their compositionally complex surfaces that can accelerate chemical reactions. Until now, scientists have not been able to precisely engineer these surface structures at the nanoscale, making it difficult to study how particle shape influences catalytic performance. Now, a study led by Northwestern University professors Chad A. Mirkin and Christopher M. Wolverton has solved that problem. The research is published in the Journal of the American Chemical Society.</description>
                    <link>https://phys.org/news/2026-04-problem-high-entropy-alloy-nanoparticle.html</link>
                    <category>Nanomaterials</category>                    <pubDate>Mon, 20 Apr 2026 18:30:04 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>Flat optics move toward market with 300-per-second metalens production</title>
                    <description>A collaborative research group has developed a fully automated roll-to-roll manufacturing platform capable of producing large-area visible metalenses at a rate of 300 units per second, marking a major breakthrough in translating metasurface technology from the laboratory to real-world industrial deployment.</description>
                    <link>https://phys.org/news/2026-04-flat-optics-metalens-production.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Sat, 18 Apr 2026 08:00:04 EDT</pubDate>
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                    <title>A silicon-compatible path toward scalable quantum systems</title>
                    <description>Beginning in the 1950s, silicon transformed the electronics industry by enabling smaller and faster devices that could be reliably manufactured at scale. More than six decades later, silicon-based semiconductors remain at the heart of many modern technologies, including so-called &quot;classical&quot; computers.</description>
                    <link>https://phys.org/news/2026-04-silicon-compatible-path-scalable-quantum.html</link>
                    <category>Condensed Matter</category>                    <pubDate>Tue, 14 Apr 2026 16:30:01 EDT</pubDate>
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                    <title>Record-breaking photonics approach traps light on a chip for millions of cycles</title>
                    <description>For years, scientists have dreamed of using atomically thin van der Waals (vdW) materials to build faster, more efficient photonic chips. These materials can be stacked and tuned with extraordinary precision, opening possibilities far beyond those of conventional technologies. The challenge is that they are extremely fragile, making them notoriously difficult to shape with standard nanofabrication tools.</description>
                    <link>https://phys.org/news/2026-04-photonics-approach-chip-millions.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 13 Apr 2026 05:00:03 EDT</pubDate>
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                    <title>Stitching precise patterns—with lasers</title>
                    <description>Just as embroiderers, with needle and thread, can transform plain fabric into an intricate pattern, engineers can use lasers and polymers to create flexible, complex structures that could transform life-saving sensing technology. An interdisciplinary team at the University of Pittsburgh&#039;s Swanson School of Engineering has developed a new manufacturing strategy that reveals where and how laser-induced graphene (LIG) forms on polymers.</description>
                    <link>https://phys.org/news/2026-04-precise-patterns-lasers.html</link>
                    <category>Nanophysics</category>                    <pubDate>Mon, 06 Apr 2026 17:10:01 EDT</pubDate>
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                    <title>Chiral metasurfaces guide twisted light into free space</title>
                    <description>Light can carry angular momentum in two distinct ways. One comes from polarization, which describes how the electric field rotates. The other comes from the shape of the wavefront itself, which can twist like a corkscrew as it travels. This second form, known as orbital angular momentum, has attracted wide interest because it allows light to encode information, interact with matter in new ways, and probe physical and biological systems. Despite this promise, producing well-defined twisted light in free space remains technically challenging, especially when the light originates from small or localized sources.</description>
                    <link>https://phys.org/news/2026-03-chiral-metasurfaces-free-space.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Tue, 31 Mar 2026 18:10:08 EDT</pubDate>
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                    <title>Programmable superconducting diode can flow on command</title>
                    <description>A team of researchers led by the University of Pittsburgh demonstrated a programmable superconducting diode at the LaAlO3/KTaO3 (LAO/KTO) interface, an advance that holds potential to enhance/help usher in the future of next-generation electronics and quantum circuits. The work, published in the journal Nano Letters, and featured on the journal&#039;s cover, was led by first author Muqing Yu, a graduate student in the lab of Jeremy Levy, Distinguished Professor of Condensed Matter Physics.</description>
                    <link>https://phys.org/news/2026-03-programmable-superconducting-diode.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 26 Mar 2026 14:20:01 EDT</pubDate>
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                    <title>DNA origami precisely positions single-photon emitters for quantum technologies</title>
                    <description>An international research team led by scientists from Skoltech has developed a method to position molecules on the surface of ultrathin materials with unprecedented precision using molecular DNA self-assembly, enabling the creation of quantum light sources. The results, published in the journal Light: Science &amp; Applications, pave the way for the production of compact and efficient components for future quantum computers and secure communication networks.</description>
                    <link>https://phys.org/news/2026-03-dna-origami-precisely-positions-photon.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Wed, 25 Mar 2026 10:00:05 EDT</pubDate>
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                    <title>Nano 3D metallic parts turn out to be surprisingly strong despite defects</title>
                    <description>Scientists at Caltech have figured out how to precisely engineer tiny three-dimensional (3D) metallic pieces with nanoscale dimensions. The process can work with any metal or metal alloy and yields components of surprising strength despite having a porous and defect-ridden microstructure, making it potentially useful in a wide range of applications, including medical devices, computer chips, and equipment needed for space missions.</description>
                    <link>https://phys.org/news/2026-03-nano-3d-metallic-strong-defects.html</link>
                    <category>Nanomaterials</category>                    <pubDate>Tue, 17 Mar 2026 17:50:04 EDT</pubDate>
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                    <title>Uncovering a patchwork of fresh and salty groundwater beneath Great Salt Lake&#039;s south shore</title>
                    <description>Thanks to upstream diversions and climate change, Utah&#039;s Great Salt Lake has shrunk by 70% since 1989, exposing about 800 square miles of playa and mudflats—along with numerous curiosities. While a potential environmental catastrophe, the lake&#039;s dewatering presents numerous research opportunities for University of Utah geoscientists, including several who are looking to characterize the extent, characteristics, chemistry and flow of a mysterious, mostly freshwater aquifer under the playa.</description>
                    <link>https://phys.org/news/2026-03-uncovering-patchwork-fresh-salty-groundwater.html</link>
                    <category>Earth Sciences</category>                    <pubDate>Thu, 12 Mar 2026 11:00:01 EDT</pubDate>
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                    <title>Nanosecond light-by-light switching achieved in liquid crystal droplet</title>
                    <description>Controlling light with light is a long-sought goal for computing and communication technologies. Achieving this capability would allow optical signals to be processed without converting them into electrical signals, potentially enabling faster and more energy-efficient devices. In recent years, researchers have begun exploring an unexpected platform for this purpose: soft matter.</description>
                    <link>https://phys.org/news/2026-03-nanosecond-liquid-crystal-droplet.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 09 Mar 2026 17:30:01 EDT</pubDate>
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                    <title>Toward practical laser-driven light sails using photonic crystals</title>
                    <description>Most space missions rely on chemical rockets for propulsion. Rockets must carry fuel, which increases spacecraft mass and limits their speed and travel distance. For decades, researchers have explored light sails as an alternative. These devices use radiation pressure—the force exerted when light reflects from a surface—to generate thrust. When driven by a powerful laser, a light sail can accelerate continuously without onboard propellant, enabling faster travel across the solar system.</description>
                    <link>https://phys.org/news/2026-03-laser-driven-photonic-crystals.html</link>
                    <category>Nanophysics</category>                    <pubDate>Thu, 05 Mar 2026 18:00:02 EST</pubDate>
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                    <title>When smaller means better: How device scaling enhances memory performance</title>
                    <description>Shrinking ferroelectric tunnel junctions can significantly boost their performance in memory devices, as reported by researchers from Science Tokyo. The team fabricated nanoscale junctions directly on silicon substrates and analyzed conduction mechanisms across a wide temperature range and multiple device scales. They found that smaller junction areas produced much larger resistance contrasts between the &quot;ON&quot; and &quot;OFF&quot; states, demonstrating that miniaturization could directly improve both efficiency and reliability in future non-volatile memory technologies.</description>
                    <link>https://phys.org/news/2026-02-smaller-device-scaling-memory.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 24 Feb 2026 14:40:01 EST</pubDate>
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                    <title>Ultra-efficient optical sensors can keep light circulating longer inside a microscopic chip</title>
                    <description>CU Boulder researchers have built high-performing optical microresonators, opening the door for new sensor technologies. At its simplest form, a microresonator is a tiny device that can trap light and build up its intensity. Once the intensity is high enough, researchers can perform unique light operations.</description>
                    <link>https://phys.org/news/2026-02-ultra-efficient-optical-sensors-circulating.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 23 Feb 2026 09:00:07 EST</pubDate>
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                    <title>Microscopic mirrors for future quantum networks: A new way to make high-performance optical resonators</title>
                    <description>Researchers in the Harvard John A. Paulson School of Engineering and Applied Sciences (SEAS) and the Faculty of Arts and Sciences have devised a new way to make some of the smallest, smoothest mirrors ever created for controlling single particles of light, known as photons. These mirrors could play key roles in future quantum computers, quantum networks, integrated lasers, environmental sensing equipment, and more.</description>
                    <link>https://phys.org/news/2026-02-microscopic-mirrors-future-quantum-networks.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Wed, 18 Feb 2026 12:27:46 EST</pubDate>
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                    <title>Nanoengineers realize an on-chip excitonic hyperlens</title>
                    <description>When light passes through materials, it typically changes direction and bends in predictable ways. This change in direction, known as refraction, is caused by a change in the speed of light as it enters a new medium. In some rare cases, however, light bends differently, specifically in the opposite direction, and this is known as negative refraction. This unusual change in direction can be leveraged to develop a wide range of advanced technologies, including advanced imaging systems and small optical devices.</description>
                    <link>https://phys.org/news/2026-02-nanoengineers-chip-excitonic-hyperlens.html</link>
                    <category>Nanophysics</category>                    <pubDate>Tue, 17 Feb 2026 07:30:02 EST</pubDate>
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                    <title>Focusing and defocusing light without a lens: First demonstration of the structured Montgomery effect in free space</title>
                    <description>Applied physicists in the Harvard John A. Paulson School of Engineering and Applied Sciences (SEAS) have demonstrated a new way to structure light in custom, repeatable, three-dimensional patterns, all without the use of traditional optical elements like lenses and mirrors. Their breakthrough provides experimental evidence of a peculiar natural phenomenon that had been confined mostly to theory.</description>
                    <link>https://phys.org/news/2026-02-focusing-defocusing-lens-montgomery-effect.html</link>
                    <category>Optics &amp; Photonics</category>                    <pubDate>Mon, 02 Feb 2026 10:39:53 EST</pubDate>
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                    <title>Shining a light on sustainable sulfur-rich polymers that stay recyclable</title>
                    <description>For the first time, scientists have used ultraviolet (UV) light, a low-cost and readily available energy source, to successfully synthesize more sustainable and recyclable polymer materials. Led by green chemistry experts at Flinders University, the development is a major step in making polymers high in sulfur content for more sustainable plastic alternatives using waste materials.</description>
                    <link>https://phys.org/news/2026-01-sustainable-sulfur-rich-polymers-stay.html</link>
                    <category>Polymers</category>                    <pubDate>Fri, 30 Jan 2026 12:54:31 EST</pubDate>
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