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説明:
(abstract)Despite lithium-oxygen batteries (LOBs) achieving energy densities over 500 Watt hours (Wh) kg−1 at the cell level, challenges remain in extending cycle life, high-rate operation, and scalability. A critical limitation lies in designing carbon-based positive electrodes with optimal porosity and stability. Previous efforts with highly porous carbon materials face issues like unoptimized pore structures, excessive microporosity, low stability, and non-scalable fabrication methods, particularly under lean-electrolyte conditions. Here, we report a scalable, cost-effective approach to fabricate self-standing carbon membranes via (1) hard-templated synthesis of mesoporous carbon with reduced microporosity, (2) slurry casting using the doctor-blade method, and (3) non-solvent-induced phase separation (NIPS) to create interconnected macropores for improved oxygen transport. LOB cells employing these hierarchically porous carbon membranes and lean electrolyte demonstrated stable cycling for over 150 cycles at 1.5 mA cm−2. Additionally, a 1-Wh-class multi-stacked LOB achieved long cycling stability. This report offers a breakthrough in scalable, high-energy-density LOB electrode development.
権利情報:
キーワード: lithium-oxygen pouch cells, carbon membrane
刊行年月日: 2025-09-17
出版者: Elsevier BV
掲載誌:
研究助成金:
原稿種別: 出版者版 (Version of record)
MDR DOI:
公開URL: https://doi.org/10.1016/j.xcrp.2025.102841
関連資料:
その他の識別子:
連絡先:
更新時刻: 2025-10-21 16:05:56 +0900
MDRでの公開時刻: 2025-10-21 15:43:22 +0900
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