Exploiting heat transfer to achieve efficient photoelectrochemical CO 2 reduction under light concentration
Photoelectrochemical (PEC) conversion of carbon dioxide into valuable chemicals and fuels represents a promising path towards combating anthropogenic CO 2 emissions. However, the limited conversion efficiencies, operation lifetimes and CO 2 utilization efficiencies of PEC devices currently prohibit...
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Published in | Energy & environmental science Vol. 15; no. 5; pp. 2061 - 2070 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
United Kingdom
Royal Society of Chemistry (RSC)
18.05.2022
|
Online Access | Get full text |
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Summary: | Photoelectrochemical (PEC) conversion of carbon dioxide into valuable chemicals and fuels represents a promising path towards combating anthropogenic CO
2
emissions. However, the limited conversion efficiencies, operation lifetimes and CO
2
utilization efficiencies of PEC devices currently prohibit their application beyond the laboratory scale. Here, a wireless device converting CO
2
and water into carbon monoxide and hydrogen at a peak solar conversion efficiency exceeding 16% under an illumination intensity of 5 suns is demonstrated. A CO/H
2
product ratio between 10–20 is measured during a 17 h stability test. Fluctuations in device performance are rigorously analyzed
via
deconvolution of electrochemical and photoabsorber contributions. It is demonstrated that beneficial heat dissipation is enabled by wireless integration of the photoabsorber and electrocatalyst components, accounting for roughly 10% of the achieved conversion efficiency, an achievement unattainable with physically separated photoabsorber and electrolyzer components. |
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Bibliography: | SC0004993 USDOE |
ISSN: | 1754-5692 1754-5706 |
DOI: | 10.1039/D1EE03957A |