Designing a Redox Heterojunction for Photocatalytic "Overall Nitrogen Fixation" under Mild Conditions.

Xia, Pengfei; Pan, Xiancheng; Jiang, Shenlong; Yu, Jiaguo; He, Bowen; Ismail, Pir Muhammad; Bai, Wei; Yang, Jingjing et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

Ammonia and nitrates are the most fundamental and significant raw ingredients in human society. Till now, industrial synthetic ammonia by Haber-Bosch process and industrial synthetic nitrates by the Ostwald process have encountered increasingly serious challenges, i.e., high energy consumption, high cost, and environment-harmful gas emissions. Therefore, developing alternative approaches to achieve nitrogen fixation to overcome the inherent deficiencies of the well-established Haber-Bosch and Ostwald processes has fascinated scientists for many years, especially the simultaneous formation of ammonia and nitrate directly from N<sub>2</sub> molecules, which has been rarely studied. Herein, a heterojunction-based photocatalytic system is designed to successfully achieve "overall nitrogen fixation," a sustainable and simultaneous conversion of N<sub>2</sub> molecules into ammonia and nitrate products under mild conditions. In this heterojunction, interfacial charge redistribution (ICR) promotes selective accumulations of photogenerated electrons and holes in the CdS and WO<sub>3</sub> components. As a result, N<sub>2</sub> molecules can be activated and reduced to ammonia products with yields of 35.8 µmol h<sup>-1</sup> g<sup>-1</sup> by a multi-electron process, and synchronously oxidized into nitrate products with yields of 14.2 µmol h<sup>-1</sup> g<sup>-1</sup> by a hole-induced oxidation coupling process. This work provides a novel insight and promising approach to realize artificial nitrogen fixation under mild condition.