Wang Yaobin, Ge Xinlei, Lu Qian, Bai Wenjun, Ye Caichao, Shao Zongping, Bu Yunfei
Jiangsu Key Laboratory of Atmospheric Environment Monitoring and Pollution Control (AEMPC), Jiangsu Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, UNIST-NUIST Energy and Environment Jointed Lab, (UNNU), School of Environmental Science and Technology, Nanjing University of Information Science and Technology (NUIST), 219 Ningliu, Nanjing, 210044, P. R. China.
Academy for Advanced Interdisciplinary Studies & Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.
Nat Commun. 2023 Nov 1;14(1):6968. doi: 10.1038/s41467-023-42728-y.
Transition metal oxides are promising electrocatalysts for zinc-air batteries, yet surface reconstruction caused by the adsorbate evolution mechanism, which induces zinc-ion battery behavior in the oxygen evolution reaction, leads to poor cycling performance. In this study, we propose a lattice oxygen mechanism involving proton acceptors to overcome the poor performance of the battery in the OER process. We introduce a stable solid base, hydroxy BaCaSiO, onto the surfaces of PrBaCaCoO perovskite nanofibers with a one-step exsolution strategy. The HO-Si sites on the hydroxy BaCaSiO significantly accelerate proton transfer from the OH* adsorbed on PrBaCaCoO during the OER process. As a proof of concept, a rechargeable zinc-air battery assembled with this composite electrocatalyst is stable in an alkaline environment for over 150 hours at 5 mA cm during galvanostatic charge/discharge tests. Our findings open new avenues for designing efficient OER electrocatalysts for rechargeable zinc-air batteries.
过渡金属氧化物是锌空气电池很有前景的电催化剂,然而,由吸附质演化机制引起的表面重构会导致析氧反应中出现锌离子电池行为,进而导致循环性能不佳。在本研究中,我们提出了一种涉及质子受体的晶格氧机制,以克服电池在析氧反应过程中的不佳性能。我们采用一步析出策略,将一种稳定的固体碱羟基BaCaSiO引入到PrBaCaCoO钙钛矿纳米纤维表面。在析氧反应过程中,羟基BaCaSiO上的HO-Si位点显著加速了质子从吸附在PrBaCaCoO上的OH*的转移。作为概念验证,在恒电流充/放电测试中,用这种复合电催化剂组装的可充电锌空气电池在碱性环境中于5 mA cm下稳定运行超过150小时。我们的发现为设计用于可充电锌空气电池的高效析氧反应电催化剂开辟了新途径。