Bi2Ti2O7 Quantum Dots for Efficient Photocatalytic Fixation of Nitrogen to Ammonia: Impacts of Shallow Energy Levels

Author:

Li Pengkun1,Wu Runjie1,Li Peishen2,Gao Shuai1,Qin Zeping1,Song Xingjian3,Sun Wenming1,Hua Zhaorui1,Wang Qiang1,Chen Shaowei3ORCID

Affiliation:

1. Laboratory for Micro‐sized Functional Materials & College of Elementary Education and Department of Chemistry Capital Normal University Beijing 100048 China

2. College of Environmental Sciences and Engineering Key Laboratory of Water and Sediment Sciences (MOE) Peking University Beijing 100871 China

3. Department of Chemistry and Biochemistry University of California 1156 High Street Santa Cruz CA 95064 USA

Abstract

AbstractPhotocatalytic fixation of nitrogen to ammonia represents an attractive alternative to the Haber–Bosch process under ambient conditions, and the performance can be enhanced by defect engineering of the photocatalysts, in particular, formation of shallow energy levels due to oxygen vacancies that can significantly facilitate the adsorption and activation of nitrogen. This calls for deliberate size engineering of the photocatalysts. In the present study, pyrochlore Bi2Ti2O7 quantum dots and (bulk‐like) nanosheets are prepared hydrothermally by using bismuth nitrate and titanium sulfate as the precursors. Despite a similar oxygen vacancy concentration, the quantum dots exhibit a drastically enhanced photocatalytic performance toward nitrogen fixation, at a rate of 332.03 µmol g−1 h−1, which is 77 times higher than that of the nanosheet counterpart. Spectroscopic and computational studies based on density functional theory calculations show that the shallow levels arising from oxygen vacancies in the Bi2Ti2O7 quantum dots, in conjunction with the moderately constrained quantum confinement effect, facilitate the chemical adsorption and activation of nitrogen.

Funder

National Science Foundation

National Natural Science Foundation of China

Publisher

Wiley

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