Boosted Electrocatalytic N<sub>2</sub> Reduction to NH<sub>3</sub> by Defect‐Rich MoS<sub>2</sub> Nanoflower

Xianghong Li(University of Electronic Science and Technology of China), Tingshuai Li(University of Electronic Science and Technology of China), Yongjun Ma(Southwest University of Science and Technology), Qin Wei(University of Jinan), Weibin Qiu(University of Electronic Science and Technology of China), Haoran Guo(Chinese Academy of Sciences), Xifeng Shi(Shandong Normal University), Peng Zhang(Chinese Academy of Sciences), Abdullah M. Asiri(King Abdulaziz University), Liang Chen(Chinese Academy of Sciences), Bo Tang(Shandong Normal University), Xuping Sun(University of Electronic Science and Technology of China)
Advanced Energy Materials
September 19, 2018
Cited by 567

Abstract

Abstract The industrial artificial fixation of atmospheric N 2 to NH 3 is carried out using the Haber–Bosch process that is not only energy‐intensive but emits large amounts of greenhouse gas. Electrochemical reduction offers an environmentally benign and sustainable alternative for NH 3 synthesis. Although Mo‐dependent nitrogenases and molecular complexes effectively catalyze the N 2 fixation at ambient conditions, the development of a Mo‐based nanocatalyst for highly performance electrochemical N 2 fixation still remains a key challenge. Here, greatly boosted electrocatalytic N 2 reduction to NH 3 with excellent selectivity by defect‐rich MoS 2 nanoflowers is reported. In 0.1 m Na 2 SO 4 , this catalyst attains a high Faradic efficiency of 8.34% and a high NH 3 yield of 29.28 µg h −1 mg −1 cat. at − 0.40 V versus reversible hydrogen electrode, much larger than those of defect‐free counterpart (2.18% and 13.41 µg h −1 mg −1 cat. ), with strong electrochemical stability. Density functional theory calculations show that the potential determining step has a lower energy barrier (0.60 eV) for defect‐rich catalyst than that of defect‐free one (0.68 eV).


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