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Updates every hour. Last Updated: 8-May-2026 13:16 ET (8-May-2026 17:16 GMT/UTC)
Three Ohio State scientists elected to National Academy of Inventors
Ohio State UniversityThree professors at The Ohio State University have been elected to the National Academy of Inventors 2025 class of Fellows.
Near-space communications: The last piece of 6G space–air–ground–sea integrated network puzzle
Beijing Institute of Technology Press Co., LtdIn situ partial‑cyclized polymerized acrylonitrile‑coated NCM811 cathode for high‑temperature≥100 °C stable solid‑state lithium metal batteries
Shanghai Jiao Tong University Journal CenterHigh-nickel ternary cathodes hold a great application prospect in solid-state lithium metal batteries to achieve high-energy density, but they still suffer from structural instability and detrimental side reactions with the solid-state electrolytes. To circumvent these issues, a continuous uniform layer polyacrylonitrile (PAN) was introduced on the surface of LiNi0.8Mn0.1Co0.1O2 via in situ polymerization of acrylonitrile (AN). Furthermore, the partial-cyclized treatment of PAN (cPAN) coating layer presents high ionic and electron conductivity, which can accelerate interfacial Li+ and electron diffusion simultaneously. And the thermodynamically stabilized cPAN coating layer cannot only effectively inhibit detrimental side reactions between cathode and solid-state electrolytes but also provide a homogeneous stress to simultaneously address the problems of bulk structural degradation, which contributes to the exceptional mechanical and electrochemical stabilities of the modified electrode. Besides, the coordination bond interaction between the cPAN and NCM811 can suppress the migration of Ni to elevate the stability of the crystal structure. Benefited from these, the In-cPAN-260@NCM811 shows excellent cycling performance with a retention of 86.8% after 300 cycles and superior rate capability. And endow the solid-state battery with thermal safety stability even at high-temperature extreme environment. This facile and scalable surface engineering represents significant progress in developing high-performance solid-state lithium metal batteries.
- Journal
- Nano-Micro Letters
Fusion of nanopores and nanofluidic devices could transform medicine and beyond
Osaka Metropolitan University- Journal
- TrAC Trends in Analytical Chemistry
Demonstration of remote, real-time predictive control of fusion plasma
National Institutes of Natural SciencesFor the first time worldwide, we have achieved remote, real-time control of fusion plasma using a digital twin running on a supercomputer located about 1,000 km away (round-trip network path ~2,000 km).
In magnetic confinement fusion power, sustaining and precisely controlling plasma at temperatures exceeding 100 million ℃ over long durations is essential. Yet “predicting-while-controlling” has been challenging due to model accuracy limits, computation speed, and unresolved physics. Our team has developed a system that applies data assimilation, continuously updating the predictive model with real-time measurements to improve accuracy and using accelerated parallel prediction to determine optimal unrehearsed control actions.
A research team from Kyoto University, the National Institute for Fusion Science (NIFS), the National Institutes for Quantum Science and Technology (QST), and the Institute of Statistical Mathematics (ISM), has connected the Large Helical Device (LHD) in Toki, Gifu, Japan to the new “Plasma Simulator” supercomputer in Rokkasho, Aomori, jointly procured by NIFS and QST, via the high-quality, high-bandwidth academic network SINET6. By exclusively using more than 20,000 Central Processing Unit (CPU) cores and minimizing communication latency, the team has realized real-time predictive control of LHD from a remote supercomputer. This approach — linking a large experimental facility and a large computing system over a ~2,000 km network loop — can serve as a foundation for real-time control beyond fusion.
- Journal
- Scientific Reports
New edge-powered vision model transforms safe, high-throughput screening of Aspergillus-infected seeds
Nanjing Agricultural University The Academy of Science- Journal
- Plant Phenomics