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25/08/2026 09:05
IMS Unveils Japan's First Full-stack Neutral-atom Quantum Computer "Shunkai," Now OperationalEQS-News: Institute for Molecular Science, National Institutes of Natural Sciences / Key word(s): Product Launch OKAZAKI, Japan, Aug. 25, 2026 /PRNewswire/ -- Institute for Molecular Science (hereinafter "IMS"), National Institutes of Natural Sciences, announced on August 24 that Japan's first full-stack neutral-atom quantum computer "Shunkai," developed by a research team led by Professor Kenji Ohmori, is now operational. Quantum computers are being developed in various modalities worldwide. However, there remain challenges to address for their practical applications, such as scalability and error correction during computation. Anticipated to overcome those challenges, neutral-atom quantum computing has been rapidly attracting attention from industry, academia and government worldwide as a groundbreaking new modality. Neutral-atom quantum computing uses a single atom as a qubit (*1) and has exceptional features, including: At the IMS, Professor Ohmori is the project manager leading the neutral-atom quantum computing research and development team for the project "Large-scale and high-coherence fault-tolerant quantum computer with dynamical atom arrays" under the Cabinet Office/JST Moonshot Research and Development Program Goal 6, "Realization of a fault-tolerant universal quantum computer." Aiming at practical quantum computers, the team has developed Japan's first full-stack neutral-atom quantum computer named Shunkai (see Fig. 1). A "full-stack" system, as shown in Fig. 2, refers to a system that integrates multiple layers (stacks) necessary for converting user inputs into drive signals for the computing device to execute computational output as its result. Personal computers and supercomputers are examples of full-stack systems. Inside Shunkai, atomic qubits are captured in an array using "optical tweezers (*3)" generated by tightly focusing laser light with an objective lens. Quantum calculations are performed by irradiating the atoms with microwaves or laser light. The computational results are interpreted by observing the fluorescence from each individual atom with a camera. The IMS has taken the lead in developing this full-stack quantum computer, leveraging a strong industry-academia collaboration within the Ohmori Moonshot Project with Hitachi, Ltd. for the software stack and with Infleqtion, Inc. for the Quantum Processing Unit (QPU) stack. Shunkai will use approximately 50 qubits in its early stage, and will expand its scale to approximately 500 qubits. The system will be partially open to external users for the development of its applications and the demonstration and improvement of quantum error correction (*4). Plans also include collaboration with Yaqumo Inc., where Professor Ohmori serves as a founder and executive advisor, from the viewpoint of the social implementation and upgrade of the quantum computer. Future Developments Message from Professor Kenji Ohmori, Institute for Molecular Science: About Shunkai Glossary (*2) Quantum entanglement: A phenomenon unique to quantum mechanics where two or more particles (quanta) maintain a strong correlation with each other, even at distances, and the observation result of one instantly determines the state of the other. (*3) Optical tweezer: A technique that uses laser light to capture particles such as atoms or dielectric particles near the focal point. (*4) Quantum error correction: A technique for correcting calculation errors caused by the imperfection of manipulations and influence of the surrounding environment on quantum bits during the calculation process. Because quantum states are extremely fragile and easily broken, this technique is essential for quantum computers. Research funding: https://kyodonewsprwire.jp/attach/202604237994-O11-DaDJ5C71.pdf
![]() 25.08.2026 CET/CEST Dissemination of a Corporate News, transmitted by EQS News - a service of EQS Group. 2388034 25.08.2026 CET/CEST Source : Webdisclosure.com |
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