Che Quande, Xie Xiaobin, Ma Qian, Wang Junpeng, Zhu Yuanna, Shi Ruixia, Yang Ping
School of Materials Science and Engineering, University of Jinan Jinan 250022 P. R. China
School of Materials Science and Engineering, Wuhan University of Technology Wuhan 430070 P. R. China.
RSC Adv. 2020 Apr 16;10(25):14972-14978. doi: 10.1039/d0ra01813a. eCollection 2020 Apr 8.
Development of efficient and stable electrodes for electrocatalytic oxygen evolution reaction (OER) is essential for energy storage and conversion applications, such as hydrogen generation from water splitting, rechargeable metal-air batteries and renewable fuel cells. Alkali metal cobalt phosphates show great potential as OER electrocatalysts. Herein, an original electrode design strategy is reported to realize an efficient OER electrocatalyst through engineering the coordination geometry of Co(ii) in KCoPO·HO by a facile dehydration process. Experimental result indicated that the dehydration treatment is accompanied by a structural transformation from orthorhombic KCoPO·HO to hexagonal KCoPO, involving a concomitant coordination geometry evolution of Co(ii) from octahedral to tetrahedral configuration. More significantly, the local structural evolution leads to an advantageous electronic effect, increased Co-O covalency, resulting in an enhanced intrinsic OER activity. To be specific, the as-produced KCoPO can deliver a current density of 10 mA cm at a low overpotential of 319 mV with a small Tafel slope of 61.8 mV dec in alkaline electrolyte. Thus, this present research provides a new way of developing alkali metal transition-metal phosphates for efficient and stable electrocatalytic oxygen evolution reaction.
开发用于电催化析氧反应(OER)的高效稳定电极对于能量存储和转换应用至关重要,例如通过水分解制氢、可充电金属空气电池和可再生燃料电池。碱金属钴磷酸盐作为OER电催化剂具有巨大潜力。在此,报道了一种原始的电极设计策略,通过简便的脱水过程对KCoPO·HO中Co(II)的配位几何结构进行工程设计,以实现高效的OER电催化剂。实验结果表明,脱水处理伴随着从正交晶系KCoPO·HO到六方晶系KCoPO的结构转变,涉及Co(II)的配位几何结构从八面体到四面体构型的伴随演化。更重要的是,局部结构演化导致有利的电子效应,增加了Co-O共价性,从而提高了本征OER活性。具体而言,所制备的KCoPOPO在碱性电解质中,在319 mV的低过电位下,所制备的KCoPO可以提供10 mA cm的电流密度,塔菲尔斜率为61.8 mV dec。因此,本研究为开发用于高效稳定电催化析氧反应的碱金属过渡金属磷酸盐提供了一种新方法。