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Updates every hour. Last Updated: 20-May-2026 00:16 ET (20-May-2026 04:16 GMT/UTC)
Achieving impact-buffered compressible batteries through 3D printing-assisted design of negative Poisson's ratio structural electrodes
KeAi Communications Co., Ltd.This study presents a metamaterial-inspired design to develop negative Poisson's ratio (NPR) structural electrodes using a directional freezing 3D printing-assisted strategy. This approach incorporates both macroscopic NPR structures and microscopic directional porous structures, which enhances ion transport, improves compressibility and provides impact resistance, effectively preventing package bulges during compression. Consequently, the electrodes demonstrate a high 50% compressible deformation and recover their original state even after 50 cycles of 25% compression. The 3D-printed lithium iron phosphate cathodes deliver a high average specific capacity of 153 mAh/g over 100 cycles and exhibit outstanding rate capability. Furthermore, the assembled full cell maintains both excellent compressibility and impact-buffered resistance, highlighting its potential applications. This innovative design of NPR metamaterial-structured electrodes provides a universal platform for developing the next generation of impact-buffered, compressible structural batteries.
- Journal
- Fundamental Research
- Funder
- National Key Research and Development Program of China, National Natural Science Foundation of China, Natural Science Foundation of Jiangsu Province, Major Project, Start-up Research Fund of Southeast University, Taihu Lake Innovation Fund for the School of Future Technology of Southeast University
HKU Engineering researchers discover quantum entanglement accelerates quantum simulation
The University of Hong KongResearchers from the Faculty of Engineering at The University of Hong Kong (HKU) have made a significant discovery regarding quantum entanglement. This phenomenon, which has long been viewed as a significant obstacle in classical quantum simulations, actually enhances the speed of quantum simulations and acts as a valuable resource. The groundbreaking findings have been featured as the Cover Story in the prestigious journal Nature Physics in an article titled “Entanglement accelerates quantum simulation”.
- Journal
- Nature Physics
Visible light writes hidden fluorescent patterns for anti-counterfeiting
KeAi Communications Co., Ltd.- Journal
- Supramolecular Materials
- Funder
- National Natural Science Foundation of China, XPLORER PRIZE, Beijing Out-standing Young Scientist Program
Telecommunications beyond 6G: the first standalone spin-wave chip with a built-in magnetic field
Politecnico di MilanoMilan, 13th January 2025 - The Politecnico di Milano has created the first integrated and fully tunable device based on spin waves, opening up new possibilities for the telecommunications of the future, far beyond current 5G and 6G standards. The study, published in the journal Advanced Materials, was conducted by a research group led by Riccardo Bertacco of the Department of Physics of the Politecnico di Milano, in collaboration with Philipp Pirro of Rheinland-Pfälzische Technische Universität and Silvia Tacchi of Istituto Officina dei Materiali - CNR-IOM.
- Journal
- Advanced Materials
MOF-derived g-C3N4/ZnIn2S4 S-scheme heterojunction: Interface-engineering enhanced photocatalytic NO conversion
Higher Education PressA MOF-derived hollow tubular g-C3N4/ZnIn2S4 S-scheme heterojunction has been developed for efficient photocatalytic nitric oxide (NO) conversion, achieving a high removal rate of 67.29% and superior selectivity toward non-toxic nitrate.
- Journal
- Acta Physico-Chimica Sinica
Characterizing the potential for sustainable azelaic acid production from high-oleic vegetable oil using two-step oxidative cleavage
University of Illinois at Urbana-Champaign Institute for Sustainability, Energy, and Environment- Journal
- ACS ES&T Engineering
A fibrous hydroelectric generator derived from eco-friendly sodium alginate for low-grade energy harvesting
Shanghai Jiao Tong University Journal CenterWith the development of renewable energy technologies, the recovery and utilization of low-grade energy based on hydroelectric effect have drawn much attention owing to its environmental friendliness. Herein, a novel hydroelectric generator utilizing sodium alginate-graphene oxide (SA-GO) fibers is proposed, which is ecofriendly and low-cost. These fibers with a length of 5 cm and a diameter of 0.15 mm can generate an open circuit voltage (Voc) of approximately 0.25 V and a short circuit current (Isc) of 4 µA. By connecting SA-GO fibers in either series or parallel, this combination can power some electronic devices. Furthermore, these fibers enable the recovery of low-grade energy from the atmosphere or around the human body. Both experimental and theoretical analysis confirm that the directional flow of protons driven by water molecules is the main mechanism for power generation of SA-GO fibers. This study not only presents a simple energy transformation method that is expected to be applied to our daily life, but also provides a novel idea for the design of humidity electricity-generation devices.
- Journal
- Frontiers in Energy
D-A COFs/ZnIn2S4 for high-efficiency H2O2 photosynthesis
Higher Education PressWe report a dual IEF-driven S-scheme heterojunction based on TpAQ and ZIS for photocatalytic H2O2 production. Without using any sacrificial agents or cocatalysts, TpAQ/ZIS-10 exhibits superior visible-light driven H2O2 production rate compared to unitary TpAQ and ZIS, illustrating the facilitated photogenerated charge separation and transfer by dual IEF-driven S-scheme heterojunctions. More importantly, the dual-pathway in TpAQ/ZIS-10 involving 2e⁻-ORR and 4e⁻-WOR synergistically promote photocatalytic H2O2 production during the reaction process.
- Journal
- Acta Physico-Chimica Sinica