» Articles » PMID: 29761617

Efficient Visible-Light-Driven CO Reduction Mediated by Defect-Engineered BiOBr Atomic Layers

Overview
Specialty Chemistry
Date 2018 May 16
PMID 29761617
Citations 47
Authors
Affiliations
Soon will be listed here.
Abstract

Solar CO reduction efficiency is largely limited by poor photoabsorption, sluggish electron-hole separation, and a high CO activation barrier. Defect engineering was employed to optimize these crucial processes. As a prototype, BiOBr atomic layers were fabricated and abundant oxygen vacancies were deliberately created on their surfaces. X-ray absorption near-edge structure and electron paramagnetic resonance spectra confirm the formation of oxygen vacancies. Theoretical calculations reveal the creation of new defect levels resulting from the oxygen vacancies, which extends the photoresponse into the visible-light region. The charge delocalization around the oxygen vacancies contributes to CO conversion into COOH* intermediate, which was confirmed by in situ Fourier-transform infrared spectroscopy. Surface photovoltage spectra and time-resolved fluorescence emission decay spectra indicate that the introduced oxygen vacancies promote the separation of carriers. As a result, the oxygen-deficient BiOBr atomic layers achieve visible-light-driven CO reduction with a CO formation rate of 87.4 μmol g  h , which was not only 20 and 24 times higher than that of BiOBr atomic layers and bulk BiOBr, respectively, but also outperformed most previously reported single photocatalysts under comparable conditions.

Citing Articles

Recent Advances in Probing Electron Delocalization in Conjugated Molecules by Attached Infrared Reporter Groups for Energy Conversion and Storage.

Devadiga D, Yan J, Devadiga D ACS Appl Energy Mater. 2025; 8(4):1942-1963.

PMID: 40018390 PMC: 11863185. DOI: 10.1021/acsaem.4c03246.


Co-Atomic Interface Minimizing Charge Transfer Barrier in Polytypic Perovskites for CO Photoreduction.

Zhong F, Sheng J, Du C, He Y, Zhang F, Sun Y Adv Sci (Weinh). 2025; 12(9):e2410437.

PMID: 39792826 PMC: 11884529. DOI: 10.1002/advs.202410437.


A surface reconstruction route for increasingly improved photocatalytic HO production using SrBiTaOCl.

Banoo M, Sah A, Sekhar Roy R, Kaur K, Kommula B, Sanyal D Chem Sci. 2024; .

PMID: 39328189 PMC: 11423514. DOI: 10.1039/d4sc04866k.


Atomically precise metal nanoclusters combine with MXene towards solar CO conversion.

Cai Y, Chen J, Su P, Yan X, Chen Q, Wu Y Chem Sci. 2024; 15(33):13495-13505.

PMID: 39183912 PMC: 11339972. DOI: 10.1039/d4sc03663h.


Modulation of Photocatalytic CO Reduction by - Codoping Engineering of Single-Atom Catalysts.

Yin G, Zhang C, Liu Y, Sun Y, Qi X Nanomaterials (Basel). 2024; 14(14).

PMID: 39057859 PMC: 11280387. DOI: 10.3390/nano14141183.