Li Zhao, Liu Dongsheng, Lu Xinhua, Du Minglin, Chen Zhenyang, Teng Jingrui, Sha Ruiqi, Tian Lin
School of Materials and Chemical Engineering, Xuzhou University of Technology, Xuzhou 221118, PR China.
Dalton Trans. 2022 Jan 25;51(4):1527-1532. doi: 10.1039/d1dt03906g.
Electrocatalytic water oxidation is a rate-determining step in the water splitting process; however, its efficiency is significantly hampered by the limitations of cost-effective electrocatalysts. Here, an advanced Co(OH) electrocatalyst with ultralow iridium (Ir) doping is developed to enable outstanding oxygen evolution reaction (OER) properties; that is, in a 1 M KOH medium, an overpotential of only 262 mV is required to achieve a current density of 10 mA cm, and a small Tafel slope of 66.9 mV dec is achieved, which is markedly superior to that of the commercial IrO catalyst (301 mV@10 mA cm; 66.9 mV dec). Through the combination of experimental data and a mechanism study, it is disclosed that the high intrinsic OER activity results from the synergistic electron coupling of oxidized Ir and Co(OH), which significantly moderate the adsorption energy of the intermediates. Moreover, we have also synthesized Ru-Co(OH) nanosheets and demonstrated the universal syntheses of Ir-doped CoM (M = Ni, Fe, Mn, and Zn) layered double hydroxides (LDHs).
电催化水氧化是水分解过程中的速率决定步骤;然而,具有成本效益的电催化剂的局限性严重阻碍了其效率。在此,开发了一种具有超低铱(Ir)掺杂的先进Co(OH)电催化剂,以实现出色的析氧反应(OER)性能;即在1 M KOH介质中,仅需262 mV的过电位即可实现10 mA cm的电流密度,并实现了66.9 mV dec的小塔菲尔斜率,这明显优于商业IrO催化剂(301 mV@10 mA cm;66.9 mV dec)。通过实验数据和机理研究的结合,揭示了高本征OER活性源于氧化Ir和Co(OH)的协同电子耦合,这显著降低了中间体的吸附能。此外,我们还合成了Ru-Co(OH)纳米片,并展示了Ir掺杂的CoM(M = Ni、Fe、Mn和Zn)层状双氢氧化物(LDH)的通用合成方法。