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Erschienen in: Rare Metals 8/2020

03.06.2020

Enhancing photothermal CO2 catalysis by thermal insulating substrates

verfasst von: Mu-Jin Cai, Chao-Ran Li, Le He

Erschienen in: Rare Metals | Ausgabe 8/2020

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Abstract

Understanding the role of heat transfer between catalysts and substrates is important for enhancing photothermal CO2 catalysis. Herein, we investigate the effect of different substrates, including silicon wafers, glass slides and copper plates, on the photothermal catalytic performance of commercial Ni catalysts. The highest CO2 conversion rate and CO selectivity are observed in the catalyst film on the glass substrate, and this can be traced to a reduced catalyst-to-substrate heat transfer that increases the catalyst temperature under illumination. Our study reveals the important role of thermal management between catalysts and substrates in photothermal catalysis and sheds light on reactor design for efficient solar-to-chemical energy conversions.

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Metadaten
Titel
Enhancing photothermal CO2 catalysis by thermal insulating substrates
verfasst von
Mu-Jin Cai
Chao-Ran Li
Le He
Publikationsdatum
03.06.2020
Verlag
Nonferrous Metals Society of China
Erschienen in
Rare Metals / Ausgabe 8/2020
Print ISSN: 1001-0521
Elektronische ISSN: 1867-7185
DOI
https://doi.org/10.1007/s12598-020-01431-3

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