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用于锂氧电池的高容量气体扩散电极。

A High Capacity Gas Diffusion Electrode for Li-O Batteries.

作者信息

Jenkins Max, Dewar Daniel, Lagnoni Marco, Yang Sixie, Rees Gregory J, Bertei Antonio, Johnson Lee R, Gao Xiangwen, Bruce Peter G

机构信息

Department of Materials, University of Oxford, Parks Road, Oxford, OX1 3PH, UK.

Department of Civil and Industrial Engineering, University of Pisa, Pisa, 56122, Italy.

出版信息

Adv Mater. 2024 Oct;36(41):e2405715. doi: 10.1002/adma.202405715. Epub 2024 Aug 5.

Abstract

The very high theoretical specific energy of the lithium-air (Li-O) battery (3500 Wh kg) compared with other batteries makes it potentially attractive, especially for the electrification of flight. While progress has been made in realizing the Li-air battery, several challenges remain. One such challenge is achieving a high capacity to store charge at the positive electrode at practical current densities, without which Li-air batteries will not outperform lithium-ion. The capacity is limited by the mass transport of O throughout the porous carbon positive electrode. Here it is shown that by replacing the binder in the electrode by a polymer with the intrinsic ability to transport O, it is possible to reach capacities as high as 31 mAh cm at 1 mA cm in a 300 µm thick electrode. This corresponds to a positive electrode energy density of 2650 Wh L and specific energy of 1716 Wh kg, exceeding significantly Li-ion batteries and previously reported Li-O cells. Due to the enhanced oxygen diffusion imparted by the gas diffusion polymer, LiO (the product of O reduction on discharge) fills a greater volume fraction of the electrode and is more homogeneously distributed.

摘要

与其他电池相比,锂空气(Li-O)电池极高的理论比能量(3500 Wh/kg)使其具有潜在吸引力,特别是对于飞行电气化而言。虽然在实现锂空气电池方面已取得进展,但仍存在若干挑战。其中一个挑战是在实际电流密度下,在正极实现高电荷存储容量,否则锂空气电池将无法超越锂离子电池。该容量受限于氧气在整个多孔碳正极中的传质。本文表明,通过用具有内在氧气传输能力的聚合物替代电极中的粘合剂,在300 µm厚的电极中,在1 mA/cm²的电流密度下可达到高达31 mAh/cm²的容量。这对应于正极能量密度为2650 Wh/L,比能量为1716 Wh/kg,显著超过锂离子电池和先前报道的锂氧电池。由于气体扩散聚合物增强了氧扩散,LiO(放电时氧还原的产物)填充了电极中更大的体积分数且分布更均匀。

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