School of Chemical Engineering, Sichuan University, Chengdu, 610065, Sichuan, China.
Nanoscale. 2019 Oct 10;11(39):18169-18175. doi: 10.1039/c9nr05991a.
The search for high efficiency and low-cost catalysts for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is vital to overall water splitting. In this work, on the basis of first-principles calculations, we screened a series of late transition metal atoms supported on a C9N4 monolayer (TM@C9N4, where TM represents Mn, Fe, Co, Ni, Cu, Ru, Rh, Pd, Ir, and Pt) as electrocatalysts for both the HER and OER. Our results demonstrate that the TM atoms can be bonded with the nitrogen atoms around the hole to form stable structures, and the bonded TM atoms are stable against diffusion. Co@C9N4 exhibits high catalytic activity toward the HER. In particular, the N active sites in the Co@C9N4, Ni@C9N4, and Pt@C9N4 systems demonstrate relatively high performance for the HER. However, Co@C9N4 and Pt@C9N4 exhibit low OER activities with large overpotentials. Among the ten cases of TM@C9N4 considered here, only Ni@C9N4 performs as a promising bifunctional electrocatalyst with N and Ni atoms as catalytic active sites for the HER and OER, with a calculated hydrogen adsorption Gibbs free energy (ΔGH*) of -0.04 eV and an OER overpotential (ηOER) of 0.31 V. The results demonstrate that TM@C9N4 is a promising single-atom catalytic system, which can be used as the non-noble metal bifunctional electrocatalyst for overall water splitting.
寻找高效、低成本的析氢反应 (HER) 和析氧反应 (OER) 催化剂对于整体水分解至关重要。在这项工作中,我们基于第一性原理计算筛选了一系列负载在 C9N4 单层上的后过渡金属原子 (TM@C9N4,其中 TM 代表 Mn、Fe、Co、Ni、Cu、Ru、Rh、Pd、Ir 和 Pt) 作为 HER 和 OER 的电催化剂。我们的结果表明,TM 原子可以与孔周围的氮原子键合形成稳定的结构,而键合的 TM 原子对扩散是稳定的。Co@C9N4 对 HER 表现出高催化活性。特别是,Co@C9N4、Ni@C9N4 和 Pt@C9N4 体系中的 N 活性位对 HER 表现出较高的性能。然而,Co@C9N4 和 Pt@C9N4 的 OER 活性较低,过电位较大。在所考虑的 TM@C9N4 的十种情况下,只有 Ni@C9N4 作为一种有前途的双功能电催化剂表现出优异的性能,其 HER 和 OER 的活性位分别为 N 和 Ni 原子,HER 的氢吸附吉布斯自由能 (ΔGH*) 为 -0.04 eV,OER 的过电位 (ηOER) 为 0.31 V。结果表明,TM@C9N4 是一种很有前途的单原子催化体系,可作为非贵金属双功能电催化剂用于整体水分解。