| Literature DB >> 31183943 |
Ling Tan1, Si-Min Xu1, Zelin Wang1, Yanqi Xu1, Xian Wang1, Xiaojie Hao1, Sha Bai1, Chenjun Ning1, Yu Wang2, Wenkai Zhang2, Yun Kyung Jo3, Seong-Ju Hwang3, Xingzhong Cao4, Xusheng Zheng5, Hong Yan1, Yufei Zhao1, Haohong Duan6, Yu-Fei Song1.
Abstract
Although progress has been made to improve photocatalytic CO2 reduction under visible light (λ>400 nm), the development of photocatalysts that can work under a longer wavelength (λ>600 nm) remains a challenge. Now, a heterogeneous photocatalyst system consisting of a ruthenium complex and a monolayer nickel-alumina layered double hydroxide (NiAl-LDH), which act as light-harvesting and catalytic units for selective photoreduction of CO2 and H2 O into CH4 and CO under irradiation with λ>400 nm. By precisely tuning the irradiation wavelength, the selectivity of CH4 can be improved to 70.3 %, and the H2 evolution reaction can be completely suppressed under irradiation with λ>600 nm. The photogenerated electrons matching the energy levels of photosensitizer and m-NiAl-LDH only localized at the defect state, providing a driving force of 0.313 eV to overcome the Gibbs free energy barrier of CO2 reduction to CH4 (0.127 eV), rather than that for H2 evolution (0.425 eV).Entities:
Keywords: CO2 photoreduction; H2 evolution; defects; layered double hydroxides; visible light catalysis
Year: 2019 PMID: 31183943 DOI: 10.1002/anie.201904246
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336