Defect-enriched BiOIO 3 /Ti3C2 MXene 2D/2D Schottky-type heterostructure for efficient and selective CH 4 production via CO 2 photoreduction: Unveiling the roles of defect inclusion and Ti3 C2 MXene co-catalyst

被引:5
|
作者
Lee, Dong-Eun [1 ]
Bhosale, Reshma [2 ]
Devthade, Vidyasagar [3 ]
Jo, Wan-Kuen [1 ]
Tonda, Surendar [1 ]
机构
[1] Kyungpook Natl Univ, Sch Architecture Civil Environm & Energy Engn, 80 Daehak Ro, Daegu 41566, South Korea
[2] Savitribai Phule Pune Univ, Dept Environm Sci, Pune 411007, Maharashtra, India
[3] Indian Inst Technol Hyderabad IITH, Dept Chem, Sangareddy 502285, Telangana, India
来源
JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY | 2024年 / 202卷
基金
新加坡国家研究基金会;
关键词
BiOIO3; Ti3; C2; MXene; Defect engineering; Hybrid heterostructure; SelectiveCO2; reduction; GRAPHITIC CARBON NITRIDE; CHARGE-TRANSFER; PHOTOCATALYTIC REDUCTION; BIOBR NANOSHEETS; OXYGEN VACANCIES; HYBRID; PERFORMANCE; TI3C2; TIO2; HETEROJUNCTION;
D O I
10.1016/j.jmst.2024.01.101
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The photoreduction of CO 2 using solar energy to produce energy-efficient fuels is a sustainable technology that addresses energy needs while reducing carbon emissions. However, synthesizing efficient and robust photocatalysts for this process is challenging. This study introduces a viable approach for highly selective CO 2 photoreduction to CH 4 production by integrating defect-enriched BiOIO 3 (DEBI) with a Ti 3 C 2 (TC) MXene co-catalyst, forming an efficient 2D/2D Schottky-type heterostructure. The DEBI, enhanced with precise defect engineering, showed improved light absorption and charge separation efficiency. In tandem, the TC MXene co-catalyst facilitated rapid electron transfer and significantly minimized charge recombination. Consequently, the DEBI/TC-2 heterostructure, with an optimal 2 wt% TC MXene loading, achieved a CH 4 yield of 52.8 mu mol h -1 g -1 , representing a remarkable 20.5- and 6.3-fold increase over pristine BiOIO 3 and DEBI, respectively. The Schottky-type 2D/2D heterostructure also demonstrated an impressive apparent quantum yield of 0.72%, 99% CH 4 selectivity over H 2 generation, and remarkable stability across multiple cycles. This study underscores the synergistic advantages of defect engineering and MXene co-catalyst integration in a single system, proposing a novel direction for designing highly efficient photocatalysts for solar-driven CO 2 reduction in energy-efficient fuel production. (c) 2024 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.
引用
收藏
页码:27 / 38
页数:12
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