TY - JOUR
T1 - Photocatalytic CO2-to-Syngas Evolution with Molecular Catalyst Metal-Organic Framework Nanozymes
AU - Stanley, Philip M.
AU - Su, Alice Y.
AU - Ramm, Vanessa
AU - Fink, Pascal
AU - Kimna, Ceren
AU - Lieleg, Oliver
AU - Elsner, Martin
AU - Lercher, Johannes A.
AU - Rieger, Bernhard
AU - Warnan, Julien
AU - Fischer, Roland A.
N1 - Publisher Copyright:
© 2022 The Authors. Advanced Materials published by Wiley-VCH GmbH.
PY - 2023/2/9
Y1 - 2023/2/9
N2 - Syngas, a mixture of CO and H2, is a high-priority intermediate for producing several commodity chemicals, e.g., ammonia, methanol, and synthetic hydrocarbon fuels. Accordingly, parallel sunlight-driven catalytic conversion of CO2 and protons to syngas is a key step toward a sustainable energy cycle. State-of-the-art catalytic systems and materials often fall short as application-oriented concurrent CO and H2 evolution requires challenging reaction conditions which can hamper stability, selectivity, and efficiency. Here a light-harvesting metal-organic framework hosting two molecular catalysts is engineered to yield colloidal, water-stable, versatile nanoreactors for photocatalytic syngas generation with highly controllable product ratios. In-depth fluorescence, X-ray, and microscopic studies paired with kinetic analysis show that the host delivers energy efficiently to active sites, conceptually yielding nanozymes. This unlocked sustained CO2 reduction and H2 evolution with benchmark turnover numbers and record incident photon conversions up to 36%, showcasing a highly active and durable all-in-one material toward application in solar energy-driven syngas generation.
AB - Syngas, a mixture of CO and H2, is a high-priority intermediate for producing several commodity chemicals, e.g., ammonia, methanol, and synthetic hydrocarbon fuels. Accordingly, parallel sunlight-driven catalytic conversion of CO2 and protons to syngas is a key step toward a sustainable energy cycle. State-of-the-art catalytic systems and materials often fall short as application-oriented concurrent CO and H2 evolution requires challenging reaction conditions which can hamper stability, selectivity, and efficiency. Here a light-harvesting metal-organic framework hosting two molecular catalysts is engineered to yield colloidal, water-stable, versatile nanoreactors for photocatalytic syngas generation with highly controllable product ratios. In-depth fluorescence, X-ray, and microscopic studies paired with kinetic analysis show that the host delivers energy efficiently to active sites, conceptually yielding nanozymes. This unlocked sustained CO2 reduction and H2 evolution with benchmark turnover numbers and record incident photon conversions up to 36%, showcasing a highly active and durable all-in-one material toward application in solar energy-driven syngas generation.
KW - carbon dioxide reduction
KW - metal-organic frameworks
KW - molecular catalysts
KW - nanozyme
KW - photocatalysis
KW - syngas
UR - http://www.scopus.com/inward/record.url?scp=85144185052&partnerID=8YFLogxK
U2 - 10.1002/adma.202207380
DO - 10.1002/adma.202207380
M3 - Article
AN - SCOPUS:85144185052
SN - 0935-9648
VL - 35
JO - Advanced Materials
JF - Advanced Materials
IS - 6
M1 - 2207380
ER -