Highly Effective Electrochemical Water Splitting with Enhanced Electron Transfer between Ni2Co Layered Double Hydroxide Nanosheets Dispersed on Carbon Substrate
Ziyi Wan, Ping Tang, Luwei Dai, Yao Yang, Lu Li, Jun Liu, Min Yang, Guowei Deng
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引用次数: 1
Abstract
A reasonable design of nickel-based catalysts is key to efficient and sustainable energy conversion. For electrocatalytic materials in alkaline electrolytes, however, atomic-level control of the active sites is essential. Moreover, the well-defined surface structure contributes to a deeper understanding of the catalytic mechanism. Here, we report the loading of defective nickel–cobalt layered double hydroxide nanosheets (Ni2Co-LDH@C) after carbonization of silk. Under the precise regulation of the local coordination environment of the catalytic active site and the presence of defects, Ni2Co-LDH@C can provide an ultra-low overpotential of 164.8 mV for hydrogen evolution reactions (HERs) at 10 mA cm−2, exceeding that of commercial Pt/C catalysts. Density functional theory calculations show that Ni2Co-LDH@C optimizes the adsorption energy of the intermediate and promotes the O-O coupling of the active site in the oxygen evolution reaction. When using Ni2Co-LDH@Cs as cathodes and anodes to achieve overall water splitting, a low voltage of 1.63 V is required to achieve a current density of 10 mA cm−2. As an ideal model, Ni2Co-LDH@C has excellent water splitting properties and has the potential to develop water–alkali electrocatalysts.
合理设计镍基催化剂是实现高效、可持续能源转化的关键。然而,对于碱性电解质中的电催化材料,活性位点的原子水平控制是必不可少的。此外,明确的表面结构有助于更深入地了解催化机理。在这里,我们报道了在丝绸炭化后加载缺陷镍钴层状双氢氧化物纳米片(Ni2Co-LDH@C)。在催化活性位点局部配位环境的精确调控和缺陷的存在下,Ni2Co-LDH@C可以在10 mA cm−2下为析氢反应(HERs)提供164.8 mV的超低过电位,超过了商用Pt/C催化剂的过电位。密度泛函理论计算表明,Ni2Co-LDH@C优化了中间体的吸附能,促进了析氧反应中活性位点的O-O偶联。当使用Ni2Co-LDH@Cs作为阴极和阳极来实现整体的水分解时,需要1.63 V的低电压来实现10 mA cm−2的电流密度。Ni2Co-LDH@C作为一种理想模型,具有优异的水裂解性能,具有开发水碱电催化剂的潜力。