Liu Kang, Fu Junwei, Zhu Li, Zhang Xiaodong, Li Hongmei, Liu Hui, Hu Junhua, Liu Min
School of Physics and Electronics, State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, Hunan, P. R. China.
School of Metallurgy and Environment, Central South University, Changsha 410083, Hunan, P. R. China.
Nanoscale. 2020 Feb 27;12(8):4903-4908. doi: 10.1039/c9nr09117c.
The electrochemical nitrogen reduction reaction (NRR) is one of the most promising routes to produce ammonia under mild conditions. Black phosphorene (BP) has attracted wide attention as an NRR electrocatalyst owing to its high Fermi level and unique electronic structure. However, the low intrinsic activity of surface sites greatly restricts its application in the electrochemical NRR. In this work, we theoretically designed a series of single-atom transition metals anchored on the BP surface with MP3 (M = Fe, Mn, Cr, Mo, W, V and Nb) active sites for the NRR via density functional theory (DFT) calculations. By taking stability, activity and selectivity into consideration, the single-atom W-anchored BP was selected as a promising candidate for the NRR. The energy-favorable enzymatic pathway on W@BP (W atoms adsorb on the surface of BP) and the hybrid pathway on W-BP (W atoms substitute the surface P atoms of BP) have reaction onset potentials of 0.46 and 0.42 V, respectively, indicating that the single-atom W-anchored BP shows high activity towards the NRR. This high performance originates from the WP3 active sites, which act as an electron adaptor to activate N2 by donating electrons, thereby greatly regulating the charge transfer between BP and the reaction intermediates. This study proposes a promising active catalyst and provides theoretical guidance to construct BP-supported transition metal single-atom electrocatalysts for the NRR.
电化学氮还原反应(NRR)是在温和条件下生产氨最具前景的途径之一。黑磷(BP)因其高费米能级和独特的电子结构作为NRR电催化剂受到广泛关注。然而,表面位点的低本征活性极大地限制了其在电化学NRR中的应用。在这项工作中,我们通过密度泛函理论(DFT)计算从理论上设计了一系列锚定在BP表面的单原子过渡金属,其具有用于NRR的MP3(M = Fe、Mn、Cr、Mo、W、V和Nb)活性位点。综合考虑稳定性、活性和选择性,单原子W锚定的BP被选为NRR的一个有前景的候选物。W@BP(W原子吸附在BP表面)上能量有利的酶促途径和W-BP(W原子取代BP的表面P原子)上的混合途径的反应起始电位分别为0.46和0.42 V,这表明单原子W锚定的BP对NRR表现出高活性。这种高性能源于WP3活性位点,其作为电子适配器通过提供电子来激活N2,从而极大地调节BP与反应中间体之间的电荷转移。本研究提出了一种有前景的活性催化剂,并为构建用于NRR的BP负载过渡金属单原子电催化剂提供了理论指导。