Tuning Oxygen Vacancies in Ultrathin TiO<sub>2</sub> Nanosheets to Boost Photocatalytic Nitrogen Fixation up to 700 nm.

Zhao, Yunxuan; Zhao, Yufei; Shi, Run; Wang, Bin; Waterhouse, Geoffrey I N; Wu, Li-Zhu; Tung, Chen-Ho; Zhang, Tierui · Adv Mater · 2019

basic_science · Level V

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Abstract

Dinitrogen reduction to ammonia using transition metal catalysts is central to both the chemical industry and the Earth's nitrogen cycle. In the Haber-Bosch process, a metallic iron catalyst and high temperatures (400 °C) and pressures (200 atm) are necessary to activate and cleave NN bonds, motivating the search for alternative catalysts that can transform N<sub>2</sub> to NH<sub>3</sub> under far milder reaction conditions. Here, the successful hydrothermal synthesis of ultrathin TiO<sub>2</sub> nanosheets with an abundance of oxygen vacancies and intrinsic compressive strain, achieved through a facile copper-doping strategy, is reported. These defect-rich ultrathin anatase nanosheets exhibit remarkable and stable performance for photocatalytic reduction of N<sub>2</sub> to NH<sub>3</sub> in water, exhibiting photoactivity up to 700 nm. The oxygen vacancies and strain effect allow strong chemisorption and activation of molecular N<sub>2</sub> and water, resulting in unusually high rates of NH<sub>3</sub> evolution under visible-light irradiation. Therefore, this study offers a promising and sustainable route for the fixation of atmospheric N<sub>2</sub> using solar energy.