A Schottky-Barrier-Free Plasmonic Semiconductor Photocatalyst for Nitrogen Fixation in a "One-Stone-Two-Birds" Manner.

Bai, Haoyuan; Lam, Shiu Hei; Yang, Jianhua; Cheng, Xizhe; Li, Shasha; Jiang, Ruibin; Shao, Lei; Wang, Jianfang · Adv Mater · 2022

basic_science · Level V

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Abstract

Plasmonic photocatalysis has received much attention owing to attractive plasmonic enhancement effects in improving the solar-to-chemical conversion efficiency. However, the photocatalytic efficiencies have remained low mainly due to the short carrier lifetime caused by the rapid recombination of plasmon-generated hot charge carriers. Although plasmonic metal-semiconductor heterostructures can improve the separation of hot charge carriers, a large portion of the hot charge carriers are lost when they cross the Schottky barrier. Herein, a Schottky-barrier-free plasmonic semiconductor photocatalyst, MoO<sub>3-</sub> <sub>x</sub> , which allows for efficient N<sub>2</sub> photofixation in a "one-stone-two-birds" manner, is demonstrated. The oxygen vacancies in MoO<sub>3-</sub> <sub>x</sub> serve as the "stone." They "kill two birds" by functioning as the active sites for the chemisorption of N<sub>2</sub> molecules and inducing localized surface plasmon resonance for the generation of hot charge carriers. Benefiting from this unique strategy, plasmonic MoO<sub>3-</sub> <sub>x</sub> exhibits a remarkable photoreactivity for NH<sub>3</sub> production up to the wavelength of 1064 nm with apparent quantum efficiencies over 1%, and a solar-to-ammonia conversion efficiency of 0.057% without any hole scavenger. This work shows the great potential of plasmonic semiconductors to be directly used for photocatalysis. The concept of the Schottky-barrier-free design will pave a new path for the rational design of efficient photocatalysts.