Li Na, Cai Liang, Gao Guoping, Lin Yue, Wang Chao, Liu Hengjie, Liu Yuying, Duan Hengli, Ji Qianqian, Hu Wei, Tan Hao, Qi Zeming, Wang Lin-Wang, Yan Wensheng
National Synchrotron Radiation Laboratory, University of Science and Technology of China, Hefei, Anhui 230029, China.
Department of Materials Science and Engineering, National University of Singapore, 117575 Singapore.
Nano Lett. 2022 Sep 14;22(17):6988-6996. doi: 10.1021/acs.nanolett.2c01777. Epub 2022 Aug 25.
We report CaIrO nanocrystals exhibit record stability of 300 h continuous operation and high iridium mass activity (248 A g at 1.5 V) that is about 62 times that of benchmark IrO. Lattice-resolution images and surface-sensitive spectroscopies demonstrate the Ir-rich surface layer (evolved from one-dimensional connected edge-sharing [IrO] octahedrons) with high relative content of Ir sites, which is responsible for the high activity and long-term stability. Combining infrared spectroscopy with X-ray absorption spectroscopy, we report the first direct observation of key intermediates absorbing at 946 cm (Ir═O site) and absorbing at 870 cm (IrOO- site) on iridium-based oxides electrocatalysts, and further discover the Ir═O and IrOO- intermediates are stable even just from 1.3 V. Density functional theory calculations indicate the catalytic activity of CaIrO is enhanced remarkably after surface Ca leaching, and suggest IrOO- and Ir═O intermediates can be stabilized on positive charged active sites of Ir-rich surface layer.
我们报道了CaIrO纳米晶体展现出300小时连续运行的创纪录稳定性以及高铱质量活性(在1.5V时为248 A g),这大约是基准IrO的62倍。晶格分辨率图像和表面敏感光谱表明,富含Ir的表面层(由一维连接的边共享[IrO]八面体演化而来)具有高相对含量的Ir位点,这是高活性和长期稳定性的原因。结合红外光谱和X射线吸收光谱,我们首次直接观察到在铱基氧化物电催化剂上在946 cm(Ir═O位点)处吸收以及在870 cm(IrOO-位点)处吸收的关键中间体,并且进一步发现即使仅从1.3V起,Ir═O和IrOO-中间体也是稳定的。密度泛函理论计算表明,表面Ca浸出后CaIrO的催化活性显著增强,并表明IrOO-和Ir═O中间体可以稳定在富含Ir的表面层的带正电活性位点上。