Increasing Mo5+ in M-doped La2(MoO4)3 (M = Fe, Co, Ni, Cu, and Zn) toward efficient electrocatalytic nitrogen fixation†
Abstract
The efficiency of the nitrogen reduction reaction (NRR) is limited by the stability of N2 and the sluggish reaction. In this work, a method to improve the NRR performance by modulating the Mo5+ content through A-site M doping is proposed. We synthesized A-site M (M = Fe, Co, Ni, Cu, and Zn) doped La2(MoO4)3 by a hydrothermal method. The enhanced electron-donating capacity of M (Fe > Co > Ni > Cu > Zn) facilitates the conversion of Mo6+ to Mo5+. The obtained order of Mo5+ percentage is (Fe: 52% > Co: 39% > Ni: 32% > Cu: 21% > Zn: 18%), which was proved by X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations. Importantly, the percentage of Mo5+ is positively correlated with the NH3 yield rate, faradaic efficiency (FE), and N2 adsorption energy. This correlation is because Mo5+ activates the N2 and promotes the hydrogenation reaction. Accordingly, the Fe-doped La2(MoO4)3 (Fe–LaMo) exhibits the highest Mo5+ content and presents advanced NRR performance (30.4 μg h−1 mgcat−1, 3.6%). The effort of Mo5+ is discussed. Meanwhile, the percentage of Mo5+ can be controlled by transition metal doping, which enables the modulation of the catalytic performance.