光热治疗
催化作用
纳米团簇
纳米技术
光催化
吸收(声学)
降级(电信)
光化学
化学
漫反射红外傅里叶变换
吸附
表面等离子共振
纳米颗粒
材料科学
化学工程
有机化学
工程类
计算机科学
复合材料
电信
作者
Yifei Li,Qianpeng Zhang,Yanan Chong,Wei‐Hsiang Huang,Chi‐Liang Chen,Xiaojing Jin,Guangxu Chen,Zhiyong Fan,Yongcai Qiu,Daiqi Ye
标识
DOI:10.1021/acs.est.3c09077
摘要
Photothermal catalysis exhibits promising prospects to overcome the shortcomings of high-energy consumption of traditional thermal catalysis and the low efficiency of photocatalysis. However, there is still a challenge to develop catalysts with outstanding light absorption capability and photothermal conversion efficiency for the degradation of atmospheric pollutants. Herein, we introduced the Co3O4 layer and Pt nanoclusters into the three-dimensional (3D) porous membrane through the atomic layer deposition (ALD) technique, leading to a Pt/Co3O4/AAO monolithic catalyst. The 3D ordered nanochannel structure can significantly enhance the solar absorption capacity through the light-trapping effect. Therefore, the embedded Pt/Co3O4 catalyst can be rapidly heated and the O2 adsorbed on the Pt clusters can be activated to generate sufficient O2– species, exhibiting outstanding activity for the diverse VOCs (toluene, acetone, and formaldehyde) degradation. Optical characterization and simulation calculation confirmed that Pt/Co3O4/AAO exhibited state-of-the-art light absorption and a notable localized surface plasmon resonance (LSPR) effect. In situ diffuse reflectance infrared Fourier transform spectrometry (in situ DRIFTS) studies demonstrated that light irradiation can accelerate the conversion of intermediates during toluene and acetone oxidation, thereby inhibiting byproduct accumulation. Our finding extends the application of AAO's optical properties in photothermal catalytic degradation of air pollutants.
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