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    <title>Photonics Spectra</title>
    <description>This is the syndication feed for Photonics Spectra.</description>
    <link>https://www.photonics.com/</link>
    <lastBuildDate>Wed, 10 Jun 2026 07:34:10 GMT</lastBuildDate>
    <pubDate>Wed, 10 Jun 2026 07:00:00 GMT</pubDate>
    <ttl>1800</ttl>
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        <title>AI Learns to Design Optical Surfaces in Real-World Conditions</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/9/thumbnail_72315.jpg" width="800" height="360" alt="AI Learns to Design Optical Surfaces in Real-World Conditions" style="width: auto; max-height: 500px;" /><br />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 &mdash; a far cry from reality. <br /> <br /> The gap between what simulations predict and what fabricated devices actually do has long frustrated researchers. It widens further when designers try to exploit one of the most powerful but underused design...]]></description>
        <link>https://www.photonics.com/Articles/AI-Learns-to-Design-Optical-Surfaces-in/p5/a72315</link>
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        <pubDate>Wed, 10 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Orbbec Opens Overseas Manufacturing Base</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/9/thumbnail_72311.jpg" width="400" height="228" alt="Orbbec Opens Overseas Manufacturing Base" style="width: auto; max-height: 500px;" /><br />Orbbec, a robotics and AI vision provider, established an overseas manufacturing base &mdash; the RMVC Factory &mdash; in Bac Ninh, Vietnam. The factory builds on Orbbec&rsquo;s overseas manufacturing capacity with goals to meet global service capabilities and long-term competitiveness. It will primarily manufacture 3D vision sensors and smart hardware products for overseas markets. <br /> <br /> Representatives from local authorities and the industrial park in Vietnam attended the ceremony to witness the official launch of the project. Courtesy of Orbbec. The RMVC Factory will serve as a key manufacturing hub within Orbbec&rsquo;s global production network. The facility is planned to cover more than 100,000 sq m, with completion and operations...]]></description>
        <link>https://www.photonics.com/Articles/Orbbec-Opens-Overseas-Manufacturing-Base/p5/a72311</link>
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        <pubDate>Wed, 10 Jun 2026 07:00:00 GMT</pubDate>
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        <title>WENZEL Appoints CTO: People in the News: 6/10/26</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/9/thumbnail_72310.10.26_web.jpg" width="400" height="400" alt="WENZEL Appoints CTO: People in the News: 6/10/26" style="width: auto; max-height: 500px;" /><br />Boston Micro Fabrication, a micro-precision 3D printing company, appointed Bryan Ferrand as president and Donna Kelly as COO. Previous CEO John Kawola will transition to the role of strategic advisor. These leadership appointments will help Boston Micro Fabrication grow across industries including medical devices, electronics, biotechnology, and other manufacturing applications. <br /> <br /> BOSTON &mdash; Aliro, a quantum networking company, appointed Fahri Diner to its board of directors. Diner is an entrepreneur and venture capitalist with expertise in optical networking. His experience in optical networking, company-building, and venture capital positions him to support Aliro's commercial growth as organizations across defense, enterprise,...]]></description>
        <link>https://www.photonics.com/Articles/WENZEL-Appoints-CTO-People-in-the-News-6-10-26/p5/a72310</link>
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        <pubDate>Wed, 10 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Hamamatsu Sets Performance Benchmark with 2-kW Laser Diode Bar</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/9/thumbnail_72314.jpg" width="768" height="461" alt="Hamamatsu Sets Performance Benchmark with 2-kW Laser Diode Bar" style="width: auto; max-height: 500px;" /><br />Hamamatsu has achieved world-class quasi-continuous wave (QCW) output of 2 kW from a 1-cm-wide laser diode bar at room temperature, leveraging proprietary high-output power laser diode technologies and newly adopted manufacturing processes. The company said in an announcement published this week that the achievement is expected to expand applications of high-power lasers, including industrial laser processing equipment and pump sources for solid-state lasers, as well as enable future deployment in advanced fields requiring high-energy light sources. <br /> <br /> Hamamatsu completed the work under a project commissioned by the New Energy and Industrial Technology Development Organization (NEDO) as part of its NEDO Feasibility Study Program /...]]></description>
        <link>https://www.photonics.com/Articles/Hamamatsu-Sets-Performance-Benchmark-with-2-kW/p5/a72314</link>
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        <pubDate>Wed, 10 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Self-Cleaning, Solar-Based Method Streamlines Seawater Desalination</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/8/thumbnail_72307.jpg" width="400" height="240" alt="Self-Cleaning, Solar-Based Method Streamlines Seawater Desalination" style="width: auto; max-height: 500px;" /><br />Current water desalination techniques are energy intensive, require re- and post-water treatment, and leave behind a concentrated saltwater byproduct. This byproduct, known as brine, wreaks havoc on sea life when deposited back into the ocean by raising the salt level and lowering oxygen in the water. <br /> <br /> Researchers developed a solar-powered desalination device featuring laser-etched superwicking black metal (in hand, right). Unlike existing solar desalination systems (in hand, left), the design prevents salt and mineral buildup from clogging the surface. Courtesy of the University of Rochester/J. Adam Fenster. To combat the issue, researchers in the laboratory of Chunlei Guo at the University of Rochester&rsquo;s Institute of Optics...]]></description>
        <link>https://www.photonics.com/Articles/Self-Cleaning-Solar-Based-Method-Streamlines/p5/a72307</link>
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        <pubDate>Tue, 09 Jun 2026 07:01:00 GMT</pubDate>
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        <title>Corning and Amazon Strike Multibillion-Dollar Optical Fiber Deal</title>
        <description><![CDATA[Corning and Amazon have established a multibillion-dollar agreement to supply the optical fiber, cable, and connectivity solutions to power Amazon&rsquo;s data center infrastructure in the U.S. The investment will create 1000 jobs at Corning&rsquo;s manufacturing facilities across North Carolina, the companies said, and support the expansion of Corning&rsquo;s facilities. <br /> <br /> The news follows Meta&rsquo;s $6 billion deal with Corning earlier this year, and Corning&rsquo;s partnership with NVIDIA formalized last month.<br /> <br /> The agreement with Corning is in addition to Amazon&rsquo;s plans, announced last year, to invest $10 billion in North Carolina to expand cloud computing infrastructure. Through the newly signed agreement, Amazon will...]]></description>
        <link>https://www.photonics.com/Articles/Corning-and-Amazon-Strike-Multibillion-Dollar/p5/a72309</link>
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        <pubDate>Tue, 09 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Microscopy Method Speeds Delivery of 3D Images with Axial Encoding</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/5/thumbnail_72304.jpg" width="500" height="714" alt="Microscopy Method Speeds Delivery of 3D Images with Axial Encoding" style="width: auto; max-height: 500px;" /><br />An advanced 3D microscopy technique from the University of Hong Kong (HKU) could significantly improve imaging speed and reduce samples&rsquo; exposure to light, while maintaining a high image quality. <br /> <br /> Conventional multiphoton microscopy (MPM) can effectively penetrate deep tissue, but its axial scanning rate is slow, and it is affected by high cumulative light exposure that can damage biological samples. These drawbacks make it difficult to monitor fast biological dynamics or conduct long-term observations using MPM. <br /> <br /> To overcome these limitations, the researchers developed AIMED, short for Arbitrary Illumination Microscopy with Encoded Depth. AIMED provides a flexible, efficient, plug-in solution for 3D imaging of neuronal...]]></description>
        <link>https://www.photonics.com/Articles/Microscopy-Method-Speeds-Delivery-of-3D-Images/p5/a72304</link>
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        <pubDate>Tue, 09 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Optical Device Reveals and Conceals Information in Response to Humidity</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/5/thumbnail_72305.jpg" width="705" height="359" alt="Optical Device Reveals and Conceals Information in Response to Humidity" style="width: auto; max-height: 500px;" /><br />Optical storage solutions, which offer high density at low cost, could help meet the burgeoning demand for additional data storage and multilevel encryption. Phase-change photonic materials and hydrogels are emerging as affordable, high-speed materials suitable for building optical storage. <br /> <br /> A hybrid device from the University of California San Diego, made with phase-change materials and gels, could provide an optical platform for secure data storage, anti-counterfeiting labels, interactive displays, and environmental sensing. <br /> Illustration of the optical device with the bottom layer of antimony trisulfide (Sb2S3) and top layer of azido-grafted carboxymethyl cellulose (CMC-N3). The UCSD Tritons logo appears at low humidity levels,...]]></description>
        <link>https://www.photonics.com/Articles/Optical-Device-Reveals-and-Conceals-Information/p5/a72305</link>
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        <pubDate>Tue, 09 Jun 2026 07:00:00 GMT</pubDate>
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        <title>High-Throughput Process Enables Scalable Production of Tandem Solar Cells</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/5/thumbnail_72303.jpg" width="1230" height="692" alt="High-Throughput Process Enables Scalable Production of Tandem Solar Cells" style="width: auto; max-height: 500px;" /><br />A new method for manufacturing perovskite photovoltaics at industrial scale could signify an important advance for renewable energy sources. The method uses a fast, solvent-free vacuum process to enable high-throughput fabrication of single-junction perovskite solar cells (SJ PSCs) and two-terminal (2T) perovskite-silicon tandem solar cells (TSCs). It is the result of a joint development effort by researchers at the Karlsruhe Institute of Technology (KIT) and the University of Valencia. <br /> <br /> Perovskite-silicon TSCs combine two semiconductors that leverage different regions of the solar spectrum. The upper, perovskite layer absorbs mostly high-energy (short-wavelength) light, while the bottom, silicon layer absorbs primarily low-energy...]]></description>
        <link>https://www.photonics.com/Articles/High-Throughput-Process-Enables-Scalable/p5/a72303</link>
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        <pubDate>Mon, 08 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Oriole Networks To Deploy AI System Powered by Photonic Network</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/5/thumbnail_72302.jpg" width="400" height="600" alt="Oriole Networks To Deploy AI System Powered by Photonic Network" style="width: auto; max-height: 500px;" /><br />Oriole Networks is continuing to make progress in its collaboration with AMD, in support of the U.K.&rsquo;s Advanced Research &amp; Innovation Agency (ARIA) Scaling Inference Lab. In current work that brings together Oriole&rsquo;s photonic networking system and AMD Instinct GPUs and AMD EPYC CPUs, the partners have unveiled plans to demonstrate how next-generation network fabrics address the growing performance, latency, and energy constraints of AI infrastructure. As part of the collaboration, which has been underway for over a year, Oriole is set to deploy the world&rsquo;s first pure photonic AI network at scale, built to supercharge AI performance at the system level by providing the lowest possible latency. <br /> Oriole Network&rsquo;s...]]></description>
        <link>https://www.photonics.com/Articles/Oriole-Networks-To-Deploy-AI-System-Powered-by/p5/a72302</link>
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        <pubDate>Mon, 08 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Hamamatsu Photonics, NKT Photonics, Yaqumo Collaborate on Quantum Computing: Week in Brief: 6/5/26</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/4/thumbnail_72300.5.26_hamamatsu_web.jpg" width="400" height="240" alt="Hamamatsu Photonics, NKT Photonics, Yaqumo Collaborate on Quantum Computing: Week in Brief: 6/5/26" style="width: auto; max-height: 500px;" /><br />Hamamatsu Photonics and its subsidiary, NKT Photonics, entered into a memorandum of understanding with Yaqumo, a developer of neutral-atom quantum computers. The companies will collaborate on the R&amp;D and industrialization of advanced photonic systems for cold-atom-based quantum computing. In addition, the three companies aim to establish a global supply chain to support these efforts. <br /> <br /> Representatives from Hamamatsu, NKT Photonics, Yaqumo, and the governments of Denmark and Japan gathered to formalize the cooperation. (From left) Jingo Kikukawa, director-general of the Innovation and Environment Bureau at the Ministry of Economy, Trade and Industry; Tadashi Maruno; president of Hamamatsu Photonics; Kazuhiro Nakashoji, CEO of...]]></description>
        <link>https://www.photonics.com/Articles/Hamamatsu-Photonics-NKT-Photonics-Yaqumo/p5/a72300</link>
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        <pubDate>Fri, 05 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Atomic Clock Developer Quantx Labs Secures Investments</title>
        <description><![CDATA[Quantx Labs, a company developing quantum sensing for applications including positioning, navigation, and timing, has secured a seed funding round led by Serendipity Capital, which invested $5 million into the precision timekeeping company. To support the company&rsquo;s next phase of growth, Serendipity Capital&rsquo;s partner and co-founder Anton Jerga will join QuantX Labs&rsquo; board of directors. <br /> <br /> Quantx Labs' technology platform represents a major advance in how precisely time can be measured, the company said. Its optical atomic clocks are up to 10 to 100&times; more stable than existing systems, while also being smaller, portable, and more robust. This step change enables critical systems such as GPS and navigation, advanced...]]></description>
        <link>https://www.photonics.com/Articles/Atomic-Clock-Developer-Quantx-Labs-Secures/p5/a72301</link>
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        <pubDate>Fri, 05 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Quantinuum Makes Nasdaq Debut</title>
        <description><![CDATA[Shares of Quantinuum Inc. began trading on the Nasdaq Global Market yesterday under the ticker symbol "QNT." The company announced the pricing of its upsized public offering of 28 million Class A common stock at a price to the public of $60 per share. <br /> <br /> Quantinuum granted the underwriters a 30-day option to purchase up to an additional 4.2 million shares of its Class A common stock to cover over-allotments at the initial public offering price, less underwriting discounts and commissions. <br /> <br /> The offering is expected to close today, subject to customary closing conditions. <br /> <br /> Last year, Quantinuum secured approximately $600 million in funding, led by Honeywell, while attracting NVIDIA&rsquo;s NVentures venture capital and...]]></description>
        <link>https://www.photonics.com/Articles/Quantinuum-Makes-Nasdaq-Debut/p5/a72299</link>
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        <pubDate>Fri, 05 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Single Atom Used to Image Below Diffraction Limit</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/3/thumbnail_72297.jpg" width="900" height="540" alt="Single Atom Used to Image Below Diffraction Limit" style="width: auto; max-height: 500px;" /><br />Researchers have developed an optical microscopy technique that uses a single ultracold atom trapped in optical tweezers as a camera. Called the "Atom Camera," the technique visualizes not only light intensity distributions but also polarization distributions. It has a high spatial resolution below 100 nm. <br /> <br /> Its developers, led by assistant professor Takafumi Tomita at the Institute for Molecular Science at the National Institutes of Natural Sciences (Japan), expect the method to be useful in quantum computing and other emerging quantum technologies. In the work, a single atom trapped by an optical tweezer was successfully utilized as a scanning probe to image the fine structures of intensity and polarization distributions of light...]]></description>
        <link>https://www.photonics.com/Articles/Single-Atom-Used-to-Image-Below-Diffraction-Limit/p5/a72297</link>
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        <pubDate>Thu, 04 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Fiber Optic Components Enable 2-µm Thulium Fiber Lasers</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/3/thumbnail_72298.jpg" width="700" height="464" alt="Fiber Optic Components Enable 2-&#181;m Thulium Fiber Lasers" style="width: auto; max-height: 500px;" /><br />Laser systems operating in the 2-&mu;m wavelength range open diverse opportunities in medical technology, agriculture, and plastics processing. In the Eurostars project DECOMP, Laser Zentrum Hannover e.V. (LZH) has developed novel fiber optic components that overcome previous technical barriers. <br /> <br /> Thulium-doped fiber lasers operate at a wavelength of ~2 &mu;m, making them particularly well-suited for applications where conventional lasers reach their limits. However, commercially available laser sources that simultaneously offer high beam quality, sufficient laser power, and the necessary reliability in quasi-continuous-wave operation at power levels around 1 kW have been lacking. <br /> Fiber optic components based on specialty fibers,...]]></description>
        <link>https://www.photonics.com/Articles/Fiber-Optic-Components-Enable-2-m-Thulium-Fiber/p5/a72298</link>
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        <pubDate>Thu, 04 Jun 2026 07:00:00 GMT</pubDate>
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        <title>SEALSQ Acquires Miraex SA</title>
        <description><![CDATA[SEALSQ, a subsidiary of post-quantum semiconductor and cybersecurity company WISeKey International, has acquired Miraex SA, a developer of photonic quantum interconnect solutions headquartered in Switzerland. <br /> <br /> According to SEALSQ, the acquisition is a defining step in the evolution of SEALSQ&rsquo;s quantum sovereign vertical stack, the company&rsquo;s "root-to qubit" architecture encompassing the full spectrum of quantum technology from quantum-resistant semiconductors to orbital space infrastructure. The acquisition further represents an acceleration of the Quantum Orbital Space Cloud (QOSC) program, which is SEALSQ&rsquo;s flagship initiative to deploy quantum-secure infrastructure across low Earth orbit and beyond. The...]]></description>
        <link>https://www.photonics.com/Articles/SEALSQ-Acquires-Miraex-SA/p5/a72296</link>
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        <pubDate>Wed, 03 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Oxxius Appoints General Manager: People in the News: 6/3/26</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/2/thumbnail_72293.3.26_gibbs_web.jpg" width="400" height="302" alt="Oxxius Appoints General Manager: People in the News: 6/3/26" style="width: auto; max-height: 500px;" /><br />Oxxius, a designer, developer, and manufacturer of high-performance lasers and combiners, appointed Scott Gibbs general manager. Gibbs has expertise in operations, manufacturing, engineering, and management. He previously served as director of operations at IBM&rsquo;s photomask facility. Additionally, Gibbs worked as director of engineering at GLOBALFOUNDRIES and spent seven years at Chroma Technology Corp. as manufacturing and quality engineering manager. <br /> Scott Gibbs. Courtesy of Oxxius. <br /> MASSY, France &mdash; Quandela, a photonic quantum computing company, appointed Cyril Dujardin COO, Michel Zecri vice president of industrialization and Michel Paulin chairman of the board. Dujardin has more than 25 years of experience in deeptech,...]]></description>
        <link>https://www.photonics.com/Articles/Oxxius-Appoints-General-Manager-People-in-the/p5/a72293</link>
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        <pubDate>Wed, 03 Jun 2026 07:00:00 GMT</pubDate>
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        <title>European Consortium Aims to Miniaturize QKD Tech</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/6/2/thumbnail_72294.jpg" width="700" height="466" alt="European Consortium Aims to Miniaturize QKD Tech" style="width: auto; max-height: 500px;" /><br />Quantum Optics Jena, the Germany-based quantum optics and photonics research hub, is leading an initiative to combine integrated photonics and quantum communications to enhance the cybersecurity of German ICT fiber networks, particularly for data centers and campus networks. The three-year collaborative project "Photonically Integrated Polarisation Analysis Module with Single-Photon Processing," or "PIC-PAM," will specifically work to make quantum-secure communications smaller, cheaper, and easier to deploy by integrating core quantum key distribution (QKD) functions into compact modules. <br /> <br /> The project is supported and co-financed by the German State of Th&uuml;ringen and the European Union, and include contributions from AIM Micro...]]></description>
        <link>https://www.photonics.com/Articles/European-Consortium-Aims-to-Miniaturize-QKD-Tech/p5/a72294</link>
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        <pubDate>Wed, 03 Jun 2026 07:00:00 GMT</pubDate>
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        <title>Photonics is Pacing AI’s Prolific Growth</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/4/23/thumbnail_72170.jpg" width="750" height="264" alt="Photonics is Pacing AI’s Prolific Growth" style="width: auto; max-height: 500px;" /><br />AI is no longer a niche computational domain; it has become a defining force reshaping global digital infrastructure. From large language models to real-time inference at the edge, AI workloads are pushing data centers beyond traditional design limits.<br /> <br /> As a result, the underlying architecture of compute, memory, and networking is undergoing rapid transformation. While much of the public focus has been on GPUs and accelerators, a slightly less-visible but equally critical enabler sits at the core of this shift: advanced laser and photonics technologies.<br /> <br /> The bandwidth challenge<br /> <br /> AI foundation model training and inference are entering the giga-scale era. These workloads are fundamentally different from conventional cloud...]]></description>
        <link>https://www.photonics.com/Articles/Photonics-is-Pacing-AIs-Prolific-Growth/p5/a72170</link>
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        <pubDate>Tue, 02 Jun 2026 12:51:00 GMT</pubDate>
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        <title>AI goes medieval on translating</title>
        <description><![CDATA[<img src="https://www.photonics.com/images/Web/Articles/2026/5/26/thumbnail_72275.jpg" width="750" height="673" alt="AI goes medieval on translating" style="width: auto; max-height: 500px;" /><br />Modern AI technology has found its way into the Byzantine Empire, unlocking the ability to decipher medieval Greek. This language bridged the transition between ancient Greek and modern Greek, spanning the era from 600 to 1500 A.D. This new ability to understand these ancient texts can help us to better understand historical facts and culture, offering new insights into that age. Since medieval Greek is difficult to read, an AI optical character recognition (OCR) engine was used to decipher the language. Finally, we can read a firsthand account of the Siege of Thessalonica (good for Ottoman Empire enthusiasts).<br /> <br /> Just like deciphering your doctor&rsquo;s handwriting can feel like it requires some sort of cryptex, trying to read medieval...]]></description>
        <link>https://www.photonics.com/Articles/AI-goes-medieval-on-translating/p5/a72275</link>
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        <pubDate>Tue, 02 Jun 2026 09:29:00 GMT</pubDate>
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