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用于促进光热催化的具有最小热发射的光学选择性催化剂设计。

Optically selective catalyst design with minimized thermal emission for facilitating photothermal catalysis.

作者信息

Yang Zhengwei, Wu Zhen-Yu, Lin Zhexing, Liu Tianji, Ding Liping, Zhai Wenbo, Chen Zipeng, Jiang Yi, Li Jinlei, Ren Siyun, Lin Zhenhui, Liu Wangxi, Feng Jianyong, Zhang Xing, Li Wei, Yu Yi, Zhu Bin, Ding Feng, Li Zhaosheng, Zhu Jia

机构信息

National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Jiangsu Key Laboratory of Artificial Functional Materials, Frontiers Science Center for Critical Earth Material Cycling, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, PR China.

Department of Chemistry, Institute of Innovative Material, Guangdong Provincial Key Laboratory of Sustainable Biomimetic Materials and Green Energy, Southern University of Science and Technology, Shenzhen, Guangdong, PR China.

出版信息

Nat Commun. 2024 Sep 1;15(1):7599. doi: 10.1038/s41467-024-51896-4.

Abstract

Converting solar energy into fuels is pursued as an attractive route to reduce dependence on fossil fuel. In this context, photothermal catalysis is a very promising approach through converting photons into heat to drive catalytic reactions. There are mainly three key factors that govern the photothermal catalysis performance: maximized solar absorption, minimized thermal emission and excellent catalytic property of catalyst. However, the previous research has focused on improving solar absorption and catalytic performance of catalyst, largely neglected the optimization of thermal emission. Here, we demonstrate an optically selective catalyst based TiCT Janus design, that enables minimized thermal emission, maximized solar absorption and good catalytic activity simultaneously, thereby achieving excellent photothermal catalytic performance. When applied to Sabatier reaction and reverse water-gas shift (RWGS) as demonstrations, we obtain an approximately 300% increase in catalytic yield through reducing the thermal emission of catalyst by ~70% under the same irradiation intensity. It is worth noting that the CO methanation yield reaches 3317.2 mmol g h at light power of 2 W cm, setting a performance record among catalysts without active supports. We expect that this design opens up a new pathway for the development of high-performance photothermal catalysts.

摘要

将太阳能转化为燃料是减少对化石燃料依赖的一条有吸引力的途径。在这种背景下,光热催化是一种非常有前景的方法,通过将光子转化为热量来驱动催化反应。主要有三个关键因素决定光热催化性能:最大化的太阳能吸收、最小化的热发射以及催化剂优异的催化性能。然而,以往的研究主要集中在提高催化剂的太阳能吸收和催化性能上,很大程度上忽略了热发射的优化。在此,我们展示了一种基于TiCT双面设计的光学选择性催化剂,它能够同时实现最小化的热发射、最大化的太阳能吸收以及良好的催化活性,从而实现优异的光热催化性能。当将其应用于萨巴蒂尔反应和逆水煤气变换(RWGS)作为示例时,在相同的辐照强度下,通过将催化剂的热发射降低约70%,我们获得了约300%的催化产率增长。值得注意的是,在2 W/cm²的光功率下,CO甲烷化产率达到3317.2 mmol g⁻¹ h⁻¹,在没有活性载体的催化剂中创造了性能记录。我们期望这种设计为高性能光热催化剂的开发开辟一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5873/11365982/c95052d77a1a/41467_2024_51896_Fig1_HTML.jpg

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