Lin Zhiyu, Huang Hao, Cheng Ling, Hu Wei, Xu Pengping, Yang Yang, Li Jianmin, Gao Feiyue, Yang Kang, Liu Shuai, Jiang Peng, Yan Wensheng, Chen Shi, Wang Changlai, Tong Huigang, Huang Minxue, Zheng Wei, Wang Hui, Chen Qianwang
Hefei National Laboratory for Physical Science at Microscale, Department of Materials Science & Engineering, National Synchrotron Radiation Laboratory, University of Science and Technology of China, Hefei, 230026, China.
Beijing Synchrotron Radiation Facility (BSRF), Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, 100049, China.
Adv Mater. 2021 Dec;33(51):e2107103. doi: 10.1002/adma.202107103. Epub 2021 Oct 11.
Most previous efforts are devoted to developing transition metals as electrocatalysts guided by the d-band center model. The metals of the s-block of the periodic table have so far received little attention in the application of oxygen reduction reactions (ORR). Herein, a carbon catalyst with calcium (Ca) single atom coordinated with N and O is reported, which displays exceptional ORR activities in both acidic condition (E = 0.77 V, 0.1 m HClO ) and alkaline condition (E = 0.90 V, 0.1 m KOH). The CaN, O/C exhibits remarkable performance in zinc-air battery with a maximum power density of 218 mW cm , superior to a series of catalysts reported so far. X-ray absorption near-edge structure (XANES) characterization confirms the formation of N- and O-atom-coordinated Ca in the carbon matrix. Density functional theory (DFT) calculations reveal that the high catalytic activity of main-group Ca is ascribed to the fact that its p-orbital electron structure is regulated by N and O coordination so that the highest peak (E ) of the projected density of states (PDOS) for the Ca atom is moved close to the Fermi level, thereby facilitating the adsorption of ORR intermediates and electron transfer.
以往的大多数努力都致力于在d带中心模型的指导下开发过渡金属作为电催化剂。迄今为止,元素周期表s区的金属在氧还原反应(ORR)应用中很少受到关注。在此,报道了一种钙(Ca)单原子与N和O配位的碳催化剂,其在酸性条件(E = 0.77 V,0.1 m HClO)和碱性条件(E = 0.90 V,0.1 m KOH)下均表现出优异的ORR活性。CaN,O/C在锌空气电池中表现出卓越的性能,最大功率密度为218 mW cm,优于迄今为止报道的一系列催化剂。X射线吸收近边结构(XANES)表征证实了碳基体中形成了N和O原子配位的Ca。密度泛函理论(DFT)计算表明,主族Ca的高催化活性归因于其p轨道电子结构受N和O配位调节,使得Ca原子的投影态密度(PDOS)的最高峰(E)靠近费米能级,从而促进了ORR中间体的吸附和电子转移。