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The safe operation of rechargeable batteries is crucial because of numerous instances of fire and explosion mishaps. However, battery chemistry involving metallic lithium (Li) as the anode is prone to thermal runaway in flammable organic electrolytes under abusive conditions. Herein, an in situ encapsulation strategy is proposed to construct nonflammable quasi-solid electrolytes through the radical polymerization of a hexafluorobutyl acrylate (HFBA) monomer and a pentaerythritol tetraacrylate (PETEA) crosslinker. The quasi-solid system eliminates the inherent flammability of ether electrolytes with zero self-extinguishing time owing to the gas-phase radical capturing ability of HFBA. Additionally, the graphitized carbon layer generated during the decomposition of PETEA at high temperatures obstructs the heat and oxygen required for combustion. When coupled with Au-modified reduced graphene oxide anodic current collectors and lithium sulfide cathodes, the assembled anode-free Li-metal cell based on the quasi-solid electrolyte exhibits no signs of cell expansion or gas generation during cycling, and thermal runaway is eliminated under multiple mechanical, electrical, and thermal abuse scenarios and even rigorous strikes. This nonflammable quasi-solid configuration with gas- and condensed-phase flame-retardant mechanisms can drive a technological leap in anode-free Li-metal pouch cells and secure the practical applications necessary to power this society in a safe manner.
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http://dx.doi.org/10.1002/adma.202304762 | DOI Listing |
Environ Res
September 2025
Jiangxi Provincial Key Laboratory of High-Performance Steel and Iron Alloy Materials,Jiangxi University of Science and Technology, Ganzhou 34100, China; School of Metallurgy Engineering, Jiangxi University of Science and Technology, Ganzhou 34100, China. Electronic address:
The thermal runaway of lithium-ion batteries (LIBs) releases a mixture of toxic and explosive gases, posing severe safety risks. High-performance sensors are critical for the early detection of these thermal runaway gases (TRGs) to prevent accident escalation. Herein, we systematically investigate Fe-X (X=C, P, S) atomic pair-modified g-CN (FCN, FPN, FSN) monolayers as potential sensing materials for six TRGs (CO, CO, H, CH, CH, and CH) using first-principles calculations.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
Hebei Engineering Research Center of Advanced Energy Storage Technology and Equipment, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, China.
Lithium metal batteries (LMBs) are expected to increase energy density due to the high capacity and low electrode potential of lithium metal. However, lithium dendrite growth and organic liquid electrolytes exacerbate the risk of thermal runaway. To improve the safety of the battery, a multifunctional flame-retardant separator was developed through the synergistic effect of decabromodiphenyl ethane (DBDPE)/AlO nanoparticle composite modification.
View Article and Find Full Text PDFACS Nano
September 2025
School of Energy and Environment, City University of Hong Kong, Kowloon, Hong Kong 999077, China.
Efficient and flame-retardant thermal management of lithium-ion batteries (LIBs) is drawing increasing attention. Herein, we report a mammal-skin-inspired self-adaptive hygroscopic nanocomposite cooling membrane that dissipates heat from LIBs via moisture desorption and subsequently recovers its cooling capacity through spontaneous moisture absorption from ambient air. The multifunctional cooling membrane, comprising hygroscopic salt, graphene oxide, active carbon fiber, an anticorrosion copper frame, and a porous membrane, is fabricated and systematically characterized, exhibiting both outstanding cooling performance and excellent flame retardancy.
View Article and Find Full Text PDFNat Commun
August 2025
Department of Structural and Geotechnical Engineering, Pontificia Universidad Católica de Chile, Santiago, Chile.
While subduction zone hazard is dominated by the megathrust, intermediate-depth (70-300 km) earthquakes within the slab can likewise have catastrophic impacts. Their physics remains enigmatic, with suggested mechanisms including dehydration embrittlement and thermal runaway. Here, we investigate the 2024 Chile, M 7.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 611731, China; Sichuan Province Engineering Technology Research Center of Novel CN Polymeric Materials, Chengdu 611731, China.
Lithium-ion batteries(LIBs)have been widely used and its safety has attracted much attention. Separators are an essential part of ensuring the safety of LIBs by both allowing ion transport and preventing direct electrical contact between the cathode and anode, Herein, a unique temperature-regulating separator that is thermally stimuli-responsive is designed. A thermosensitive composite separator was ingeniously crafted by filling hollow halloysite that followed by encapsulation with a phase change materials (PCMs) and a bio-adhesive polydopamine with a high-temperature-resistant poly (arylene ether nitriles) polymer.
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