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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Engineering rGO nanosheets-adsorption layer supported Pt nanoparticles to enhance photo-thermal catalytic activity under light irradiation
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Engineering rGO nanosheets-adsorption layer supported Pt nanoparticles to enhance photo-thermal catalytic activity under light irradiation

机译:工程rgo纳米蛋白酶 - 吸附层支持Pt纳米颗粒,以增强光辐射下的光热催化活性

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摘要

The direct conversion of renewable clean solar energy into heat to drive various catalytic reactions, e.g., oxidative degradation of volatile organic compounds, is highly desirable but remains challenging because of its low efficiency. In this work, a Pt-decorated-rGO nanosheet adsorption layer is rationally fabricated to achieve highly selective conversion of gaseous toluene to carbon dioxide under light irradiation. Specifically, its maximum photo-thermal conversion efficiency reaches 17.6% with a significant toluene conversion of 98% and CO2 yield of 96% under 146 mW cm(-2) infrared light irradiation, together with excellent stability of nearly 45 h, much superior to that of the previous reported catalyst of Pt-rGO-TiO2. The comparison characterizations evidence that this excellent performance is predominantly attributed to the synergistic effects of ultrabroadband strong IR light absorption, efficient light-to-heat conversion, well-dispersed active Pt nanoparticles and strong reactant adsorption capacity with light irradiation. This work highlights that rGO nanosheets-adsorption layer directs light harnessing, Pt nanoparticle dispersion and reactant adsorption, showing great promise for redox reactions through photo-thermal effect. It is anticipated that this study will provide insight into the design of more energy-efficient catalysts with significant utilization of solar energy.
机译:可再生清洁太阳能的直接转化为热量以驱动各种催化反应,例如挥发性有机化合物的氧化降解,是非常理想的,但由于其效率低,因此仍然挑战。在这项工作中,PT-装饰RGO纳米片吸附层是合理制造的,以在光照射下实现气态甲苯的高选择性转化为二氧化碳。具体而言,其最大光转化效率达到17.6%,具有98%和CO 2率为96%的甲苯转化率为96%(-2)红外光照射,近45小时的优异稳定性,优于先前报道的Pt-rgo-TiO2催化剂的催化剂。比较特征的证据表明,这种优异的性能主要归因于超载带强度光吸收,高效的光 - 热转化,分散的活性Pt纳米颗粒的协同效应和具有光照照射的强反应物吸附能力。这项工作突出显示Rgo纳米蛋白酶 - 吸附层引导光束,Pt纳米粒子分散体和反应物吸附,对通过光热效应的氧化还原反应显示出很大的希望。预计本研究将对具有显着利用太阳能的节能催化剂的设计提供了深入了解。

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    Chinese Acad Sci Inst Urban Environm Key Lab Urban Pollutant Convers CAS Ctr Excellence Reg Atmospher Environm Xiamen 361021 Fujian Peoples R China;

    Chinese Acad Sci Inst Urban Environm Key Lab Urban Pollutant Convers CAS Ctr Excellence Reg Atmospher Environm Xiamen 361021 Fujian Peoples R China;

    Chinese Acad Sci Inst Urban Environm Key Lab Urban Pollutant Convers CAS Ctr Excellence Reg Atmospher Environm Xiamen 361021 Fujian Peoples R China;

    Chinese Acad Sci Inst Urban Environm Key Lab Urban Pollutant Convers CAS Ctr Excellence Reg Atmospher Environm Xiamen 361021 Fujian Peoples R China;

    Univ Chinese Acad Sci Beijing 100049 Peoples R China;

    Chinese Acad Sci Inst Urban Environm Key Lab Urban Pollutant Convers CAS Ctr Excellence Reg Atmospher Environm Xiamen 361021 Fujian Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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