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		<title>Electronics News -- ScienceDaily</title>
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		<description>News and Research in Electronics. Read about new discoveries in electronics including electronic circuits, polymer-based electronics, nanotubes and more.</description>
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		<pubDate>Thu, 05 Jun 2025 10:04:13 EDT</pubDate>
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			<title>Electronics News -- ScienceDaily</title>
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			<title>Researchers develop recyclable, healable electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/06/250602190434.htm</link>
			<description>Electronics often get thrown away after use because recycling them requires extensive work for little payoff. Researchers have now found a way to change the game.</description>
			<pubDate>Mon, 02 Jun 2025 19:04:34 EDT</pubDate>
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			<title>Engineers develop self-healing muscle for robots</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250530151849.htm</link>
			<description>Students recently unveiled their invention of a robotic actuator -- the &#039;muscle&#039; that converts energy into a robot&#039;s physical movement -- that has the ability to detect punctures or pressure, heal the injury and repair its damage-detecting &#039;skin.&#039;</description>
			<pubDate>Fri, 30 May 2025 15:18:49 EDT</pubDate>
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			<title>Laser technique revolutionizes ultra-high temperature ceramic manufacturing for space, defense applications</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250529124618.htm</link>
			<description>Researchers have demonstrated a new technique that uses lasers to create ceramics that can withstand ultra-high temperatures, with applications ranging from nuclear power technologies to spacecraft and jet exhaust systems. The technique can be used to create ceramic coatings, tiles or complex three-dimensional structures, which allows for increased versatility when engineering new devices and technologies.</description>
			<pubDate>Thu, 29 May 2025 12:46:18 EDT</pubDate>
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			<title>New chiral photonic device combines light manipulation with memory</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250528131552.htm</link>
			<description>Engineers have developed a multifunctional, reconfigurable component for an optical computing system that could be a game changer in electronics.</description>
			<pubDate>Wed, 28 May 2025 13:15:52 EDT</pubDate>
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			<title>Quantum eyes on energy loss: Diamond quantum imaging for next-gen power electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250523120453.htm</link>
			<description>Diamond quantum sensors can be used to analyze the magnetization response of soft magnetic materials used in power electronics; report scientists based on collaborative research. Using a novel imaging technique, they developed quantum protocols to simultaneously image both the amplitude and phase of AC stray fields over a wide frequency range up to 2.3 MHz. Their results demonstrate that quantum sensing is a powerful tool for developing advanced magnetic materials across diverse applications.</description>
			<pubDate>Fri, 23 May 2025 12:04:53 EDT</pubDate>
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			<title>Researchers make breakthrough in semiconductor technology set to supercharge 6G delivery</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250522183216.htm</link>
			<description>Self-driving cars which eliminate traffic jams, getting a healthcare diagnosis instantly without leaving your home, or feeling the touch of loved ones based across the continent may sound like the stuff of science fiction. But new research could make all this and more a step closer to reality thanks to a radical breakthrough in semiconductor technology.</description>
			<pubDate>Thu, 22 May 2025 18:32:16 EDT</pubDate>
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			<title>A rule-breaking, colorful silicone that could conduct electricity</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250522183211.htm</link>
			<description>A newly discovered silicone variant is a semiconductor, researchers have discovered -- upending assumptions that the material class is exclusively insulating.</description>
			<pubDate>Thu, 22 May 2025 18:32:11 EDT</pubDate>
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			<title>Developing a pressure-induced water producing material</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250522125356.htm</link>
			<description>Researchers have discovered a phenomenon -- applying pressure to a copper-chromium Prussian blue analog, which is a compound featuring crystal voids, causes the discharge of water retained within these voids. This material is expected to serve as a novel onsite water production platform for extraction of water solely through pressure application, without temperature or humidity control, even in arid regions.</description>
			<pubDate>Thu, 22 May 2025 12:53:56 EDT</pubDate>
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			<title>Scientists discover class of crystals with properties that may prove revolutionary</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250521161106.htm</link>
			<description>Researchers have discovered a new class of materials -- called intercrystals -- with unique electronic properties that could power future technologies. Intercrystals exhibit newly discovered forms of electronic properties that could pave the way for advancements in more efficient electronic components, quantum computing and environmentally friendly materials, the scientists said.</description>
			<pubDate>Wed, 21 May 2025 16:11:06 EDT</pubDate>
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			<title>Mind the band gap! -- researchers create new nanoscale forms of elementary semiconductor with tunable electronic properties</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250521124123.htm</link>
			<description>Researchers have demonstrated that by using a semiconductor with flexible bonds, the material can be moulded into various structures using nano containers, without altering its composition, the discovery could lead to the design of a variety of customised electronic devices using only a single element.</description>
			<pubDate>Wed, 21 May 2025 12:41:23 EDT</pubDate>
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			<title>Forgotten property of the electron</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250520121705.htm</link>
			<description>The orbital angular momentum of electrons has long been considered a minor physical phenomenon, suppressed in most crystals and largely overlooked. Scientists have now discovered that in certain materials it is not only preserved but can even be actively controlled. This is due to a property of the crystal structure called chirality, which also influences many other processes in nature. The discovery has the potential to lead to a new class of electronic components capable of transmitting information with exceptional robustness and energy efficiency.</description>
			<pubDate>Tue, 20 May 2025 12:17:05 EDT</pubDate>
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			<title>Log in to your computer with a secret message encoded in a molecule</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250516133232.htm</link>
			<description>Molecules like DNA are capable of storing large amounts of data without requiring an energy source, but accessing this molecular data is expensive and time consuming. Researchers have now developed an alternative method to encode information in synthetic molecules, which they used to encode and then decode an 11-character password to unlock a computer.</description>
			<pubDate>Fri, 16 May 2025 13:32:32 EDT</pubDate>
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			<title>Resistance is futile: Superconducting diodes are the future</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250515132501.htm</link>
			<description>Researchers have discovered the mechanism for supercurrent rectification, in which current flows primarily in one direction in a superconductor. By using a specific iron-based superconductor, they were able to observe this phenomenon over a broad range of magnetic and temperature fields. This understanding paves the way for the design and construction of superconducting diodes and other ultra-low energy electronics.</description>
			<pubDate>Thu, 15 May 2025 13:25:01 EDT</pubDate>
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			<title>Stability solution brings unique form of carbon closer to practical application</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250509121907.htm</link>
			<description>Carbyne, a one-dimensional chain of carbon atoms, is incredibly strong for being so thin, making it an intriguing possibility for use in next-generation electronics, but its extreme instability made it nearly impossible to produce at all, let alone produce enough of it for advanced studies. Now, an international team of researchers may have a solution.</description>
			<pubDate>Fri, 09 May 2025 12:19:07 EDT</pubDate>
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			<title>Turning non-magnetic materials magnetic with atomically thin films</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250508112736.htm</link>
			<description>The rules about magnetic order may need to be rewritten. An international team of researchers found that it was possible to turn a non-magnetic material into a magnetic material by slicing it into thin films.</description>
			<pubDate>Thu, 08 May 2025 11:27:36 EDT</pubDate>
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			<title>New microscope reveals heat flow in materials for green energy</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250508112604.htm</link>
			<description>Scientists have developed a new microscope that significantly improves the way heat flow in materials can be measured. This advancement could lead to better designs for electronic devices and energy systems.</description>
			<pubDate>Thu, 08 May 2025 11:26:04 EDT</pubDate>
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			<title>Eco-friendly aquatic robot is made from fish food</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250508112558.htm</link>
			<description>An edible robot leverages a combination of biodegradable fuel and surface tension to zip around the water&#039;s surface, creating a safe -- and nutritious -- alternative to environmental monitoring devices made from artificial polymers and electronics.</description>
			<pubDate>Thu, 08 May 2025 11:25:58 EDT</pubDate>
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			<title>Vapor-deposited perovskite semiconductors power next generation circuits</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250506224414.htm</link>
			<description>A research team has developed a groundbreaking technology poised to revolutionize next-generation displays and electronic devices.</description>
			<pubDate>Tue, 06 May 2025 22:44:14 EDT</pubDate>
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			<title>Ultra-thin bismuth holds unexpected promise for green electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250506170911.htm</link>
			<description>Electronic devices rely on materials whose electrical properties change with temperature, making them less stable in extreme conditions. A discovery that challenges conventional wisdom in physics suggests that bismuth, a metal, could serve as the foundation for highly stable electronic components. The researchers observed a mysterious electrical effect in ultra-thin bismuth that remains unchanged across a wide temperature range, from near absolute zero (-273 C) to room temperature.</description>
			<pubDate>Tue, 06 May 2025 17:09:11 EDT</pubDate>
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			<title>Robotic touch sensors are not just skin deep</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250505171017.htm</link>
			<description>Researchers argue that the problem that has been lurking in the margins of many papers about touch sensors lies in the robotic skin itself.</description>
			<pubDate>Mon, 05 May 2025 17:10:17 EDT</pubDate>
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			<title>&#039;Cold&#039; manufacturing approach to make next-gen batteries</title>
			<link>https://www.sciencedaily.com/releases/2025/05/250502182514.htm</link>
			<description>Lithium-ion batteries have been a staple in device manufacturing for years, but the liquid electrolytes they rely on to function are quite unstable, leading to fire hazards and safety concerns. Now, researchers are pursuing a reliable alternative energy storage solution for use in laptops, phones and electric vehicles: solid-state electrolytes (SSEs).</description>
			<pubDate>Fri, 02 May 2025 18:25:14 EDT</pubDate>
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			<title>Engineers advance toward a fault-tolerant quantum computer</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250430142617.htm</link>
			<description>Researchers demonstrated extremely strong nonlinear light-matter coupling in a quantum circuit. Stronger coupling enables faster quantum readout and operations, ultimately improving the accuracy of quantum operations.</description>
			<pubDate>Wed, 30 Apr 2025 14:26:17 EDT</pubDate>
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			<title>Engineer reinvents ceramics with origami-inspired 3D printing</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250423130331.htm</link>
			<description>In a breakthrough that blends ancient design with modern materials science, researchers have developed a new class of ceramic structures that can bend under pressure -- without breaking.</description>
			<pubDate>Wed, 23 Apr 2025 13:03:31 EDT</pubDate>
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			<title>Crystal clear design for high-performance flexible thermoelectric semiconductor</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250423112636.htm</link>
			<description>Researchers have identified a new material which could be used as a flexible semiconductor in wearable devices by using a technique that focuses on the manipulation of spaces between atoms in crystals.</description>
			<pubDate>Wed, 23 Apr 2025 11:26:36 EDT</pubDate>
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			<title>Engineers print synthetic &#039;metamaterials&#039; that are both strong and stretchy</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250423112135.htm</link>
			<description>Engineers have fabricated a metamaterial that is not only strong but also stretchy. Their new method could enable stretchable ceramics, glass, and metals, for tear-proof textiles or stretchy semiconductors.</description>
			<pubDate>Wed, 23 Apr 2025 11:21:35 EDT</pubDate>
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			<title>Scientists have found a way to &#039;tattoo&#039; tardigrades</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250423112030.htm</link>
			<description>If you haven&#039;t heard of a tardigrade before, prepare to be wowed. These clumsy, eight-legged creatures, nicknamed water bears, are about half a millimeter long and can survive practically anything: freezing temperatures, near starvation, high pressure, radiation exposure, outer space and more. Researchers took advantage of the tardigrade&#039;s nearly indestructible nature and gave the critters tiny &#039;tattoos&#039; to test a microfabrication technique to build microscopic, biocompatible devices.</description>
			<pubDate>Wed, 23 Apr 2025 11:20:30 EDT</pubDate>
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			<title>New electronic &#039;skin&#039; could enable lightweight night-vision glasses</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250423111902.htm</link>
			<description>Engineers developed a technique to grow and peel ultrathin &#039;skins&#039; of electronic material that could be used in applications such as night-vision eyewear and autonomous driving in foggy conditions.</description>
			<pubDate>Wed, 23 Apr 2025 11:19:02 EDT</pubDate>
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			<title>Researchers demonstrate new class of quantum materials that are both metallic and one-dimensional</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250417145242.htm</link>
			<description>A study has found a rare form of one-dimensional quantum magnetism in a metallic compound, offering evidence into a phase space that has remained, until now, largely theoretical. The study comes at a time of growing global interest in quantum materials that redefine the boundaries between magnetism, conductivity, and quantum coherence.</description>
			<pubDate>Thu, 17 Apr 2025 14:52:42 EDT</pubDate>
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			<title>A cool fix for hot chips: Advanced thermal management technology for electronic devices</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250417144927.htm</link>
			<description>Researchers have demonstrated a significant performance increase in cooling technology for high-power electronic devices. They designed novel capillary geometries that push the boundaries of thermal transfer efficiency. This study could play a crucial role in the development of next-generation technology.</description>
			<pubDate>Thu, 17 Apr 2025 14:49:27 EDT</pubDate>
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			<title>Photonic computing needs more nonlinearity: Acoustics can help</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250414124725.htm</link>
			<description>Neural networks are one typical structure on which artificial intelligence can be based. The term neural describes their learning ability, which to some extent mimics the functioning of neurons in our brains. To be able to work, several key ingredients are required: one of them is an activation function which introduces nonlinearity into the structure. A photonic activation function has important advantages for the implementation of optical neural networks based on light propagation. Researchers have now experimentally shown an all-optically controlled activation function based on traveling sound waves. It is suitable for a wide range of optical neural network approaches and allows operation in the so-called synthetic frequency dimension.</description>
			<pubDate>Mon, 14 Apr 2025 12:47:25 EDT</pubDate>
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			<title>Cooler faster better: Engineers uncover a new way to stop electronics from overheating</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250414124342.htm</link>
			<description>Engineers discovered a way to move heat ultrafast using crystal waves, offering a breakthrough in cooling advanced electronics.</description>
			<pubDate>Mon, 14 Apr 2025 12:43:42 EDT</pubDate>
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			<title>A fluid battery that can take any shape</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250411175441.htm</link>
			<description>Using electrodes in a fluid form, researchers have developed a battery that can take any shape. This soft and conformable battery can be integrated into future technology in a completely new way.</description>
			<pubDate>Fri, 11 Apr 2025 17:54:41 EDT</pubDate>
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			<title>3D-printed open-source robot offers accessible solution for materials synthesis</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250409115256.htm</link>
			<description>FLUID, an open-source, 3D-printed robot, offers an affordable and customizable solution for automated material synthesis, making advanced research accessible to more scientists.</description>
			<pubDate>Wed, 09 Apr 2025 11:52:56 EDT</pubDate>
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			<title>Tiny, soft robot flexes its potential as a life saver</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250408121334.htm</link>
			<description>A tiny, soft, flexible robot that can crawl through earthquake rubble to find trapped victims or travel inside the human body to deliver medicine may seem like science fiction, but an international team is pioneering such adaptable robots by integrating flexible electronics with magnetically controlled motion.</description>
			<pubDate>Tue, 08 Apr 2025 12:13:34 EDT</pubDate>
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			<title>Physicists uncover electronic interactions mediated via spin waves</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250403183142.htm</link>
			<description>Physicists have made a novel discovery regarding the interaction of electronic excitations via spin waves. The finding could open the door to future technologies and advanced applications such as optical modulators, all-optical logic gates, and quantum transducers.</description>
			<pubDate>Thu, 03 Apr 2025 18:31:42 EDT</pubDate>
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			<title>Smartphone photo sensors transformed into an unprecedented resolution antimatter camera</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250402181314.htm</link>
			<description>Scientists have repurposed smartphone camera sensors to create a detector capable of tracking antiproton annihilations in real time with unprecedented resolution. This new device can pinpoint antiproton annihilations with a resolution of about 0.6 micrometers, a 35-fold improvement over previous real-time methods.</description>
			<pubDate>Wed, 02 Apr 2025 18:13:14 EDT</pubDate>
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			<title>An efficient self-assembly process for advanced self-healing materials</title>
			<link>https://www.sciencedaily.com/releases/2025/04/250401131304.htm</link>
			<description>Self-healing coatings are advanced materials that can repair damage, such as scratches and cracks on their own. Researchers have developed an efficient method for preparing self-healing films consisting of alternating layers of highly cross-linked organosiloxane and linear polydimethylsiloxane (PDMS). Their film is more durable than conventional self-healing PDMS materials, offering superior hardness and greater thermal stability while self-healing at mild temperatures, paving the way for stronger, more reliable, and easier-maintained self-healing materials.</description>
			<pubDate>Tue, 01 Apr 2025 13:13:04 EDT</pubDate>
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			<title>Smart textiles and surfaces: How lightweight elastomer films are bringing tech to life</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250328112853.htm</link>
			<description>Clothes that can mimic the feeling of being touched, touch displays that provide haptic feedback to users, or even ultralight loudspeakers. These are just some of the devices made possible using thin silicone films that can be precisely controlled so that they vibrate, flex, press or pull exactly as desired. And all done simply by applying an electrical voltage.</description>
			<pubDate>Fri, 28 Mar 2025 11:28:53 EDT</pubDate>
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			<title>Physicists discover a copper-free high-temperature superconducting oxide</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250327141944.htm</link>
			<description>Engineers have designed and synthesized a groundbreaking new material -- a copper-free superconducting oxide -- capable of superconducting at approximately 40 Kelvin, or about minus 233 degrees Celsius, under ambient pressure.</description>
			<pubDate>Thu, 27 Mar 2025 14:19:44 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250327141944.htm</guid>
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			<title>A lighter, smarter magnetoreceptive electronic skin</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250327141727.htm</link>
			<description>Imagine navigating a virtual reality with contact lenses or operating your smartphone under water: This and more could soon be a reality thanks to innovative e-skins. A research team has developed an electronic skin that detects and precisely tracks magnetic fields with a single global sensor. This artificial skin is not only light, transparent and permeable, but also mimics the interactions of real skin and the brain.</description>
			<pubDate>Thu, 27 Mar 2025 14:17:27 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250327141727.htm</guid>
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		<item>
			<title>These electronics-free robots can walk right off the 3D-printer</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250325115131.htm</link>
			<description>This a robot can walk, without electronics, and only with the addition of a cartridge of compressed gas, right off the 3D-printer. It can also be printed in one go, from one material.</description>
			<pubDate>Tue, 25 Mar 2025 11:51:31 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250325115131.htm</guid>
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		<item>
			<title>Listen to quantum atoms talk together thanks to acoustics</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250325115125.htm</link>
			<description>To get around the constraints of quantum physics, researchers have built a new acoustic system to study the way the minuscule atoms of condensed matter talk together. They hope to one day build an acoustic version of a quantum computer.</description>
			<pubDate>Tue, 25 Mar 2025 11:51:25 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250325115125.htm</guid>
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		<item>
			<title>Quantum heat dynamics toggled by magnetic fields</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250319143646.htm</link>
			<description>The ability to conduct heat is one of the most fundamental properties of matter, crucial for engineering applications. Scientists know well how conventional materials, such as metals and insulators, conduct heat. However, things are not as straightforward under extreme conditions such as temperatures close to absolute zero combined with strong magnetic fields, where strange quantum effects begin to dominate. This is particularly true in the realm of quantum materials.</description>
			<pubDate>Wed, 19 Mar 2025 14:36:46 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250319143646.htm</guid>
		</item>
		<item>
			<title>New platform lets anyone rapidly prototype large, sturdy interactive structures</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250318175127.htm</link>
			<description>A rapid prototyping platform called VIK (Voxel Invention Kit) enables makers without engineering expertise to create large-scale interactive devices using a series of reconfigurable electromechanical building blocks. These user-friendly components can be assembled using only a soldering iron and a pair of pliers.</description>
			<pubDate>Tue, 18 Mar 2025 17:51:27 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250318175127.htm</guid>
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		<item>
			<title>Lords of the molecular rings: An innovative shortcut to high-performance organic materials</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250318141607.htm</link>
			<description>Scientists have unveiled an innovative approach for synthesizing azaparacyclophanes (APCs), a class of highly advanced ring-shaped molecular structures with immense potential in material science. Their innovative Catalyst-Transfer Macrocyclization (CTM) method streamlines the production of these complex macrocycles, paving the way for more efficient and scalable applications in organic electronics, optoelectronics, and supramolecular chemistry -- such as displays, flexible solar cells and transistors.</description>
			<pubDate>Tue, 18 Mar 2025 14:16:07 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250318141607.htm</guid>
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		<item>
			<title>Scientists tune in to rhombohedral graphene&#039;s potential</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250317164457.htm</link>
			<description>Scientists are investigating how structures made from several layers of graphene stack up in terms of their fundamental physics and their potential as reconfigurable semiconductors for advanced electronics.</description>
			<pubDate>Mon, 17 Mar 2025 16:44:57 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250317164457.htm</guid>
		</item>
		<item>
			<title>Spinning, twisted light could power next-generation electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250313151808.htm</link>
			<description>Researchers have advanced a decades-old challenge in the field of organic semiconductors, opening new possibilities for the future of electronics. The researchers have created an organic semiconductor that forces electrons to move in a spiral pattern, which could improve the efficiency of OLED displays in television and smartphone screens, or power next-generation computing technologies such as spintronics and quantum computing.</description>
			<pubDate>Thu, 13 Mar 2025 15:18:08 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250313151808.htm</guid>
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		<item>
			<title>Exciting moments on the edge</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250312123844.htm</link>
			<description>Researchers have demonstrated that phosphorene nanoribbons (PNRs) exhibit both magnetic and semiconducting properties at room temperature. The research establishes PNRs as a unique class of low-dimensional materials that challenges conventional views on magnetic semiconductors, and could provide a stepping stone to unlocking new quantum technologies.</description>
			<pubDate>Wed, 12 Mar 2025 12:38:44 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250312123844.htm</guid>
		</item>
		<item>
			<title>New &#039;one-pot&#039; technique a breakthrough for material synthesis</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250306152934.htm</link>
			<description>A new technique builds inorganic and polymer battery electrolytes at the same time, in the same vessel. This &#039;one-pot&#039; in-situ method creates a controlled, homogeneous blend, pairing the conductivity of the inorganic solids with the flexibility of the polymers.</description>
			<pubDate>Thu, 06 Mar 2025 15:29:34 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250306152934.htm</guid>
		</item>
		<item>
			<title>Touchless tech: Control fabrics with a wave of your finger</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250306121051.htm</link>
			<description>Researchers have created washable and durable magnetic field sensing electronic textiles -- thought to be the first of their kind -- which they say paves the way to transform use in clothing. This technology will allow users to interact with everyday textiles or specialized clothing by simply pointing their finger above a sensor.</description>
			<pubDate>Thu, 06 Mar 2025 12:10:51 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250306121051.htm</guid>
		</item>
		<item>
			<title>Single-qubit sensing puts new spin on quantum materials discovery</title>
			<link>https://www.sciencedaily.com/releases/2025/03/250305135144.htm</link>
			<description>Working at nanoscale dimensions, billionths of a meter in size, a team of scientists revealed a new way to measure high-speed fluctuations in magnetic materials. Knowledge obtained by these new measurements could be used to advance technologies ranging from traditional computing to the emerging field of quantum computing.</description>
			<pubDate>Wed, 05 Mar 2025 13:51:44 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/03/250305135144.htm</guid>
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		<item>
			<title>Powering the future -- ultrathin films are revolutionizing electrical conductivity</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250228134559.htm</link>
			<description>A multi-institutional research team has engineered a way to preserve the electrical properties of materials as they are shrunk to the nanoscale. The use of the soft substrate hexagonal boron nitride reduces damage to the atomic structure caused by strain, allowing materials to keep their conductive properties as films as thin as 12 nm.</description>
			<pubDate>Fri, 28 Feb 2025 13:45:59 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250228134559.htm</guid>
		</item>
		<item>
			<title>Unraveling how a &#039;magnetic twist&#039; induces one-way electric flow</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250227125804.htm</link>
			<description>A twist you&#039;ll never see coming: a breakthrough in understanding the relationship between chirality and electric flow at a microscopic level may help us develop chiral information technology.</description>
			<pubDate>Thu, 27 Feb 2025 12:58:04 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250227125804.htm</guid>
		</item>
		<item>
			<title>Material&#039;s &#039;incipient&#039; property could jumpstart fast, low-power electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250226175921.htm</link>
			<description>Scientists have harnessed a unique property called incipient ferroelectricity to create a new type of computer memory that could revolutionize how electronic devices work, such as using much less energy and operating in extreme environments like outer space.</description>
			<pubDate>Wed, 26 Feb 2025 17:59:21 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250226175921.htm</guid>
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		<item>
			<title>Mesoporous silicon: Semiconductor with new talents</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250225122018.htm</link>
			<description>Silicon is the best-known semiconductor material. However, controlled nanostructuring drastically alters the material&#039;s properties. Using a specially developed etching apparatus, a team has now produced mesoporous silicon layers with countless tiny pores and investigated their electrical and thermal conductivity. For the first time, the researchers elucidated the electronic transport mechanism in this mesoporous silicon. The material has great potential for applications and could also be used to thermally insulate qubits for quantum computers.</description>
			<pubDate>Tue, 25 Feb 2025 12:20:18 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250225122018.htm</guid>
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			<title>Chip-based system for terahertz waves could enable more efficient, sensitive electronics</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250220164504.htm</link>
			<description>Researchers developed a low-cost, scalable terahertz amplifier that could be used to make antenna arrays that can steer and focus high-frequency terahertz waves, for applications like high-resolution radar, high-speed communications, and medical imaging.</description>
			<pubDate>Thu, 20 Feb 2025 16:45:04 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250220164504.htm</guid>
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			<title>Cooling materials -- Out of the 3D printer</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250220164241.htm</link>
			<description>Rapid, localized heat management is essential for electronic devices and could have applications ranging from wearable materials to burn treatment. While so-called thermoelectric materials convert temperature differences to electrical voltage and vice versa, their efficiency is often limited, and their production is costly and wasteful. Researchers have now used a 3D printing technique to fabricate high-performance thermoelectric materials, reducing production costs significantly.</description>
			<pubDate>Thu, 20 Feb 2025 16:42:41 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250220164241.htm</guid>
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			<title>A miniature swimming robot inspired by marine flatworms</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250219154625.htm</link>
			<description>Engineers have developed a versatile swimming robot that nimbly navigates cluttered water surfaces. Inspired by marine flatworms, the innovative device offers new possibilities for environmental monitoring and ecological research.</description>
			<pubDate>Wed, 19 Feb 2025 15:46:25 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250219154625.htm</guid>
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			<title>For success in bioelectronics, build with nature-inspired design</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250219134541.htm</link>
			<description>Researchers have 3D printed bioelectronic scaffolds that have the properties cells need to form new tissue.</description>
			<pubDate>Wed, 19 Feb 2025 13:45:41 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250219134541.htm</guid>
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			<title>Magnetic switch traps quantum information carriers in one dimension</title>
			<link>https://www.sciencedaily.com/releases/2025/02/250219110117.htm</link>
			<description>A quantum &#039;miracle material&#039; could support magnetic switching, a team of researchers has shown.</description>
			<pubDate>Wed, 19 Feb 2025 11:01:17 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/02/250219110117.htm</guid>
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