Qiao Jingyuan, You Yurong, Kong Lingqiao, Feng Weihang, Zhang Heshuang, Huang Haibin, Li Caifang, He Wei, Sun ZhengMing
School of Materials Science and Engineering, Southeast University, Nanjing, 211189, P. R. China.
Jiangxi HAC GENERAL SEMITECH CO., LTD, Science and Technology Innovation Park, Gongqingcheng High-tech Zone, Jiujiang, Jiangxi, 332020, P. R. China.
Adv Mater. 2024 Aug;36(32):e2405533. doi: 10.1002/adma.202405533. Epub 2024 Jun 5.
Rechargeable Zn-air batteries (ZABs) are promising for energy storage and conversion. However, the high charging voltage and low energy efficiency hinder their commercialization. Herein, these challenges are addressed by employing precisely constructed multifunctional Fe-Co diatomic site catalysts (FeCo-DACs) and integrating iodide/iodate redox into ZABs to create Zinc-air/iodide hybrid batteries (ZAIHBs) with highly efficient multifunctional catalyst. The strong coupling between the 3d orbitals of Fe and Co weakens the excessively strong binding strength between active sites and intermediates, enhancing the catalytic activities for oxygen reduction/evolution reaction and iodide/iodate redox. Consequently, FeCo-DACs exhibit outstanding bifunctional oxygen catalytic activity with a small potential gap (ΔE = 0.66 V) and outstanding stability. Moreover, an outstanding catalytic performance toward iodide/iodate redox is obtained. Therefore, FeCo-DAC-based ZAIHBs exhibit high energy efficiency of up to 75% at 10 mA cm and excellent cycling stability (72% after 500 h). This research offers critical insights into the rational design of DACs and paves the way for high-energy efficiency energy storage devices.
可充电锌空气电池(ZABs)在能量存储和转换方面具有广阔前景。然而,高充电电压和低能量效率阻碍了它们的商业化。在此,通过采用精确构建的多功能铁钴双原子位点催化剂(FeCo-DACs)并将碘化物/碘酸盐氧化还原体系集成到ZABs中,以创建具有高效多功能催化剂的锌空气/碘化物混合电池(ZAIHBs),解决了这些挑战。铁和钴的3d轨道之间的强耦合削弱了活性位点与中间体之间过强的结合强度,提高了氧还原/析出反应以及碘化物/碘酸盐氧化还原的催化活性。因此,FeCo-DACs表现出出色的双功能氧催化活性,具有小的电位差(ΔE = 0.66 V)和出色的稳定性。此外,还获得了对碘化物/碘酸盐氧化还原的出色催化性能。因此,基于FeCo-DAC的ZAIHBs在10 mA cm下表现出高达75%的高能量效率和出色的循环稳定性(500 h后为72%)。这项研究为双原子位点催化剂的合理设计提供了关键见解,并为高能效储能装置铺平了道路。