<?xml version="1.0" encoding="UTF-8"?><rss xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:content="http://purl.org/rss/1.0/modules/content/" xmlns:atom="http://www.w3.org/2005/Atom" version="2.0"><channel><title><![CDATA[Nanotechnology World]]></title><description><![CDATA[Nanotechnology World: Leading global nanotech network offering communication and marketing services to connect and empower the nanotech community.]]></description><link>https://www.nanotechnologyworld.org/newsroom</link><generator>RSS for Node</generator><lastBuildDate>Mon, 08 Jun 2026 17:09:16 GMT</lastBuildDate><atom:link href="https://www.nanotechnologyworld.org/blog-feed.xml" rel="self" type="application/rss+xml"/><item><title><![CDATA[Skyrmions become colorful now!]]></title><description><![CDATA[Researchers from Tsinghua University and Nanyang Technological University have achieved a major breakthrough in optical skyrmions — tiny topological “knots” of light that are highly promising for future high-capacity and secure data transmission.]]></description><link>https://www.nanotechnologyworld.org/post/skyrmions-become-colorful-now</link><guid isPermaLink="false">6a19482669f69d4475ae78f1</guid><category><![CDATA[Physics]]></category><pubDate>Fri, 29 May 2026 08:05:36 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_db39ef38604c4cebad22e7d540dfa2c0~mv2.jpg/v1/fit/w_700,h_394,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[DESY Spin-off Class 5 Photonics Acquired by Light Conversion]]></title><description><![CDATA[Light Conversion, a laser company based in Vilnius, Lithuania, has acquired Class 5 Photonics GmbH, a spin-off from DESY and GSI. Both companies are ultrafast laser system manufacturers, bringing together decades of expertise in femtosecond lasers, optical parametric chirped-pulse amplification (OPCPA), and advanced nonlinear technologies for the scientific as well as the R&#38;D market.]]></description><link>https://www.nanotechnologyworld.org/post/desy-spin-off-class-5-photonics-acquired-by-light-conversion</link><guid isPermaLink="false">6a19474d69f69d4475ae7744</guid><category><![CDATA[Business]]></category><pubDate>Fri, 29 May 2026 08:01:30 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_b7bbabcaf152412896bc47aef5a1dc98~mv2.jpg/v1/fit/w_780,h_557,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Once a disruption, now a resource: Superconducting vortices used as qubits]]></title><description><![CDATA[Researchers at the Karlsruhe Institute of Technology (KIT) have turned a long-standing problem in superconductivity into a promising new resource for quantum computing. Magnetic vortices — tiny whirlpools of magnetic field that usually disrupt superconducting materials — have been shown to behave as controllable quantum states.]]></description><link>https://www.nanotechnologyworld.org/post/once-a-disruption-now-a-resource-superconducting-vortices-used-as-qubits</link><guid isPermaLink="false">6a1942fd145da5e38308cc70</guid><category><![CDATA[Quantum Tech]]></category><pubDate>Fri, 29 May 2026 07:45:11 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_43b2beece8994ce38a1cc9b82ee0f422~mv2.jpg/v1/fit/w_700,h_404,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[A new way to move heat could transform energy and electronics]]></title><description><![CDATA[Researchers at Carnegie Mellon University, in collaboration with Stanford and Purdue, have demonstrated a powerful new way to control heat at the nanoscale. Using carefully engineered metamaterials — microscopic gold patterns on thin membranes — they achieved up to four times more heat transfer across a tiny gap compared to conventional setups.]]></description><link>https://www.nanotechnologyworld.org/post/a-new-way-to-move-heat-could-transform-energy-and-electronics</link><guid isPermaLink="false">6a193fea69f69d4475ae6793</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Electronics]]></category><category><![CDATA[Featured]]></category><pubDate>Fri, 29 May 2026 07:32:42 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_3e207c13a5b9425fa2c9fd35de970844~mv2.jpg/v1/fit/w_523,h_700,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Quantum dynamics breakthrough overturns claim of ‘quantum supremacy,’ opens new research directions]]></title><description><![CDATA[By adapting an algorithm from the 1980s to mathematical objects called tensor networks, researchers at the Flatiron Institute show that classical computers can tackle a class of problems previously claimed to be solvable only by quantum computers]]></description><link>https://www.nanotechnologyworld.org/post/quantum-dynamics-breakthrough-overturns-claim-of-quantum-supremacy-opens-new-research-directions</link><guid isPermaLink="false">6a154dd851dc293355328621</guid><category><![CDATA[Quantum Tech]]></category><category><![CDATA[Physics]]></category><category><![CDATA[Computing]]></category><pubDate>Tue, 26 May 2026 07:43:53 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_fbfd4caf23a04ca9be741cf5168ab02b~mv2.jpg/v1/fit/w_700,h_392,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[When order gives way to chaos: the turbulent birth of magnetic nanovortices]]></title><description><![CDATA[A team of researchers from the Max Born Institute, the Ferdinand Braun Institute, the University of Augsburg, and the Helmholtz-Zentrum Berlin has succeeded in directly imaging the effect of short current pulses on a skyrmion. ]]></description><link>https://www.nanotechnologyworld.org/post/when-order-gives-way-to-chaos-the-turbulent-birth-of-magnetic-nanovortices</link><guid isPermaLink="false">6a154360d681fe01d16a3a00</guid><category><![CDATA[Top]]></category><category><![CDATA[Physics]]></category><category><![CDATA[Metrology]]></category><pubDate>Tue, 26 May 2026 07:29:19 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_82425f31cb9940a3b39262c4c065a8e6~mv2.jpg/v1/fit/w_700,h_700,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Stressed crystal creates nanoscale patterns on chip materials at room temperature]]></title><description><![CDATA[Rice University researchers have developed a simple new technique to create nanoscale patterns on hard chip materials at room temperature. By layering anisotropic alpha-molybdenum trioxide crystals on silica and exposing them to an electron beam, the team induced controlled stress that forms highly ordered nanoscale wrinkles or ripples.]]></description><link>https://www.nanotechnologyworld.org/post/stressed-crystal-creates-nanoscale-patterns-on-chip-materials-at-room-temperature</link><guid isPermaLink="false">6a153f07b3f40ff4eeeb0750</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Electronics]]></category><pubDate>Tue, 26 May 2026 06:41:18 GMT</pubDate><enclosure url="http://www.youtube.com/watch?v=t3_oy4anxwk&amp;t=81s" length="0" type="video"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Precision experiment puts pressure on quantum collapse theories]]></title><description><![CDATA[Quantum mechanics’ famous measurement problem — illustrated by Schrödinger’s cat — may be one step closer to an experimental answer. Using the ultra-sensitive XENONnT dark matter detector deep underground in Italy, an international team has placed the strongest constraints yet on “collapse models,” theories proposing that quantum superpositions spontaneously collapse due to interactions with a noise field or gravity.]]></description><link>https://www.nanotechnologyworld.org/post/precision-experiment-puts-pressure-on-quantum-collapse-theories</link><guid isPermaLink="false">6a0d6c49cb0791383ec207ed</guid><category><![CDATA[Quantum Tech]]></category><pubDate>Wed, 20 May 2026 08:15:30 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_10073616104e4f48b5fb42a2a7f163e7~mv2.jpg/v1/fit/w_700,h_700,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Researchers measure giant light-conversion effect in chiral carbon nanotubes]]></title><description><![CDATA[A sheet of twisted carbon nanotubes has revealed a hidden talent scientists suspected for decades but had never managed to measure.]]></description><link>https://www.nanotechnologyworld.org/post/researchers-measure-giant-light-conversion-effect-in-chiral-carbon-nanotubes</link><guid isPermaLink="false">6a0d682996905735bfe5e50d</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Photonics]]></category><pubDate>Wed, 20 May 2026 07:56:26 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_a3bc9da817b34f53afb1727207e5f66b~mv2.jpg/v1/fit/w_700,h_467,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Honey-like Heat Flow: A New Heat Transport Regime Discovered in Ultrathin Semiconductors]]></title><description><![CDATA[Controlling heat flow is a major challenge for next-generation electronics and photonic devices. Now, an international team led by ICN2, UAB, TU/e, and McGill has discovered a completely new heat transport regime in ultrathin 2D semiconductors.]]></description><link>https://www.nanotechnologyworld.org/post/honey-like-heat-flow-a-new-heat-transport-regime-discovered-in-ultrathin-semiconductors</link><guid isPermaLink="false">6a0bf8fedf43effc8ce667e5</guid><category><![CDATA[Semiconductor]]></category><category><![CDATA[Material Science]]></category><pubDate>Tue, 19 May 2026 05:53:12 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_c6c77e77aaa142c6be9753c521bc900a~mv2.png/v1/fit/w_1000,h_1000,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Making ‘light’ work of computing]]></title><description><![CDATA[Penn physicists led by Bo Zhen have created hybrid light-matter particles that interact strongly enough to compute, pointing toward ultrafast, low-energy optical AI hardware.]]></description><link>https://www.nanotechnologyworld.org/post/making-light-work-of-computing</link><guid isPermaLink="false">6a0bf4b8e8a70f90633fff65</guid><category><![CDATA[Computing]]></category><category><![CDATA[Material Science]]></category><category><![CDATA[Photonics]]></category><pubDate>Tue, 19 May 2026 05:33:42 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_6adb3eb7bb0b47c48f44f26e3a644470~mv2.jpg/v1/fit/w_700,h_394,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[New nanotech tool decodes cell identity from sugar patterns on their surface]]></title><description><![CDATA[Scientists have developed “glycan atlassing,” a breakthrough super-resolution technique that maps the precise nanoscale architecture of sugars on cell surfaces. Published in Nature Nanotechnology, the method reveals that the spatial organization of glycans encodes critical information about cell state — opening powerful new possibilities for cancer diagnostics, stem cell research, and precision nanomedicine.]]></description><link>https://www.nanotechnologyworld.org/post/new-nanotech-tool-decodes-cell-identity-from-sugar-patterns-on-their-surface</link><guid isPermaLink="false">6a06be8e9f0dce7b5991a5f6</guid><category><![CDATA[Life Science]]></category><pubDate>Fri, 15 May 2026 06:42:55 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_194f0b2fe67f4971af9a544ae0fa54fe~mv2.png/v1/fit/w_1000,h_749,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Quantum geometry lens shines new light on solids]]></title><description><![CDATA[A new approach to looking at solids provides theoretical limits on some of their properties]]></description><link>https://www.nanotechnologyworld.org/post/quantum-geometry-lens-shines-new-light-on-solids</link><guid isPermaLink="false">6a06bb069f0dce7b59919e38</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Quantum Tech]]></category><pubDate>Fri, 15 May 2026 06:23:44 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_7935997598dc4832a7430eabc1e6d9ea~mv2.jpg/v1/fit/w_600,h_400,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Researchers “reprogram” materials by quickly rearranging their atoms]]></title><description><![CDATA[A new method for precisely moving columns of individual atoms within a material could give rise to exotic quantum properties]]></description><link>https://www.nanotechnologyworld.org/post/researchers-reprogram-materials-by-quickly-rearranging-their-atoms</link><guid isPermaLink="false">6a05799a618ba45174011d6d</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Quantum Tech]]></category><category><![CDATA[Featured]]></category><pubDate>Thu, 14 May 2026 07:31:13 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_4b63e74460fc4ca88a2b3e46ebdfda34~mv2.jpg/v1/fit/w_700,h_467,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Powerful shrinking technique could enable devices that compute with light]]></title><description><![CDATA[MIT engineers have developed a way to generate 3D photonic devices with nanoscale features, by shrinking them after fabrication. In their new study, they created devices in a variety of shapes, including helices and a shape inspired by the wing of a butterfly.]]></description><link>https://www.nanotechnologyworld.org/post/powerful-shrinking-technique-could-enable-devices-that-compute-with-light</link><guid isPermaLink="false">6a05745bbe81b6c3a5aa33c6</guid><category><![CDATA[Photonics]]></category><pubDate>Thu, 14 May 2026 07:20:53 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_c2c0870ae6d54dc0a7140ec446bacf29~mv2.webp/v1/fit/w_700,h_467,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Forge Nano delivers semiconductor wafer fab equipment to leading fortune global 500 communications company for commercial photonics applications]]></title><description><![CDATA[Deployment expands Forge Nano’s position in advanced semiconductor manufacturing and photonics infrastructure markets DENVER, May 14, 2026 (GLOBE NEWSWIRE) -- Forge Nano, Inc., a leading U.S. based semiconductor equipment and advanced materials company pioneering Atomic Layer Deposition (“ALD”) technology for artificial intelligence (“AI”)-era chip manufacturing and defense battery applications, which has signed an agreement to merge with Archimedes Tech SPAC Partners II Co. (“Archimedes II”)...]]></description><link>https://www.nanotechnologyworld.org/post/forge-nano-delivers-semiconductor-wafer-fab-equipment-to-leading-fortune-global-500-communications-c</link><guid isPermaLink="false">6a06ae697326fc782b55a37a</guid><pubDate>Wed, 13 May 2026 16:00:00 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_8c541a194d7f4f0ca51516686a6700b0~mv2.jpg/v1/fit/w_474,h_205,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[O’Melveny Advises on First IPO of an AI Nano-Delivery Company in US$270 Million Hong Kong Chapter 18C Listing of Metis TechBio]]></title><description><![CDATA[HONG KONG—May 13, 2026—O’Melveny represented joint sponsors and other underwriters in the initial public offering and listing of Metis TechBio Co., Ltd. (“Metis TechBio”, 7666.HK) on the Main Board of The Stock Exchange of Hong Kong. Listed under Chapter 18C (Specialist Technology Companies) of the Hong Kong Listing Rules, Metis TechBio raised approximately HK$2.1 billion (approximately US$270 million), assuming the over-allotment option is not exercised. O’Melveny acted as Hong Kong and U.S....]]></description><link>https://www.nanotechnologyworld.org/post/o-melveny-advises-on-first-ipo-of-an-ai-nano-delivery-company-in-us-270-million-hong-kong-chapter-18</link><guid isPermaLink="false">6a06ab890b9e4f37fd23e3c1</guid><category><![CDATA[Business]]></category><pubDate>Tue, 12 May 2026 16:00:00 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_62e376a5f1a64945adf09678c4919569~mv2.jpg/v1/fit/w_474,h_474,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Manchester team steer electron spin ballistically in graphene]]></title><description><![CDATA[Researchers at The University of Manchester’s National Graphene Institute have shown that electrons in ultra-clean graphene can be steered with high precision while keeping their spin information intact, a key requirement for future low power electronics and quantum devices. ]]></description><link>https://www.nanotechnologyworld.org/post/manchester-team-steer-electron-spin-ballistically-in-graphene</link><guid isPermaLink="false">6a015ca9522ae05c442096d6</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Electronics]]></category><category><![CDATA[Quantum Tech]]></category><pubDate>Mon, 11 May 2026 04:40:23 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_0d9e03772c5f433a93f3ca8d0545b175~mv2.jpg/v1/fit/w_700,h_394,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[Quantum metallurgy: Electron crystals deform and melt]]></title><description><![CDATA[Electrons can arrange into crystalline patterns that accumulate defects as they melt; controlling the degree of melting may advance superconductors and artificial neurons]]></description><link>https://www.nanotechnologyworld.org/post/quantum-metallurgy-electron-crystals-deform-and-melt</link><guid isPermaLink="false">6a01596ef215e81d2e4a05b3</guid><category><![CDATA[Material Science]]></category><category><![CDATA[Quantum Tech]]></category><category><![CDATA[Top]]></category><pubDate>Mon, 11 May 2026 04:32:05 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_2e52cbed0cd549759b319c882f75fbdb~mv2.jpg/v1/fit/w_768,h_768,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item><item><title><![CDATA[First demonstration of atomic spin qubit interaction with a single-quantum sound wave]]></title><description><![CDATA[Good vibrations for quantum communications]]></description><link>https://www.nanotechnologyworld.org/post/first-demonstration-of-atomic-spin-qubit-interaction-with-a-single-quantum-sound-wave</link><guid isPermaLink="false">6a0157fff215e81d2e4a0283</guid><category><![CDATA[Quantum Tech]]></category><category><![CDATA[Engineering]]></category><pubDate>Mon, 11 May 2026 04:20:59 GMT</pubDate><enclosure url="https://static.wixstatic.com/media/23c4a3_424efb33dcb44b76824b4073273c9605~mv2.jpg/v1/fit/w_700,h_582,al_c,q_80/file.png" length="0" type="image/png"/><dc:creator>Marine Le Bouar</dc:creator></item></channel></rss>