Wan Lei, Xu Ziang, Cao Qingbin, Liao Yiwen, Wang Baoguo, Liu Kai
The State Key Laboratory of Chemical Engineering, Department of Chemical Engineering, Tsinghua University, Beijing 100084, People's Republic of China.
Nano Lett. 2022 Jun 8;22(11):4535-4543. doi: 10.1021/acs.nanolett.2c01388. Epub 2022 May 19.
To improve the energy conversion efficiency and durability of zinc-air batteries (ZABs) for large-scale implementations, here we propose an "air-breathing" strategy to significantly enlarge triple-interfaces with intensified mass transfer. By dip-coating the aerophilic perfluorochemical compounds (PFC) and amphiphilic ionomers into the self-supported electrodes, (1) the high solubility of O in the PFC nanoemulsions greatly increases triple-phase boundaries and facilitates the efficient supply/removal of O from the electrolyte; (2) the ionomers with hydrophobic and hydrophilic functionalities enable fast gas, water, and ion transport to the triple-phase boundaries; and (3) the self-supported electrode without binder ensures fast electron transfer while the firm integration prevents catalyst shedding. By applying this strategy, the ZABs show a high power density of 115 mW cm and a narrow discharge/charge gap of 0.64 V at 10 mA cm and a long-cycling durability (over 1000 h). This work provides a universal approach to promote gas-evolving reactions for electrochemical applications.
为提高锌空气电池(ZABs)大规模应用的能量转换效率和耐久性,我们在此提出一种“呼吸空气”策略,以通过强化传质显著扩大三相界面。通过将亲气性全氟化合物(PFC)和两亲性离聚物浸涂到自支撑电极中,(1)O在PFC纳米乳液中的高溶解度极大地增加了三相边界,并促进了O从电解质中的有效供应/去除;(2)具有疏水和亲水功能的离聚物能够使气体、水和离子快速传输到三相边界;(3)无粘结剂的自支撑电极确保了快速的电子转移,同时牢固的整合防止了催化剂脱落。通过应用该策略,ZABs在10 mA cm时显示出115 mW cm的高功率密度和0.64 V的窄充放电间隙,以及长循环耐久性(超过1000小时)。这项工作为促进电化学应用中的析气反应提供了一种通用方法。