Synergy of ferroelectric polarization and oxygen vacancy to promote CO<sub>2</sub> photoreduction.

Yu, Hongjian; Chen, Fang; Li, Xiaowei; Huang, Hongwei; Zhang, Qiuyu; Su, Shaoqiang; Wang, Keyang; Mao, Enyang et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

Solar-light driven CO<sub>2</sub> reduction into value-added chemicals and fuels emerges as a significant approach for CO<sub>2</sub> conversion. However, inefficient electron-hole separation and the complex multi-electrons transfer processes hamper the efficiency of CO<sub>2</sub> photoreduction. Herein, we prepare ferroelectric Bi<sub>3</sub>TiNbO<sub>9</sub> nanosheets and employ corona poling to strengthen their ferroelectric polarization to facilitate the bulk charge separation within Bi<sub>3</sub>TiNbO<sub>9</sub> nanosheets. Furthermore, surface oxygen vacancies are introduced to extend the photo-absorption of the synthesized materials and also to promote the adsorption and activation of CO<sub>2</sub> molecules on the catalysts' surface. More importantly, the oxygen vacancies exert a pinning effect on ferroelectric domains that enables Bi<sub>3</sub>TiNbO<sub>9</sub> nanosheets to maintain superb ferroelectric polarization, tackling above-mentioned key challenges in photocatalytic CO<sub>2</sub> reduction. This work highlights the importance of ferroelectric properties and controlled surface defect engineering, and emphasizes the key roles of tuning bulk and surface properties in enhancing the CO<sub>2</sub> photoreduction performance.