| Literature DB >> 32510861 |
Chenhuai Yang1,2, Shuyu Li1,2, Zhicheng Zhang1,2, Haiqing Wang3, Huiling Liu4,5, Fei Jiao1,2, Zhenguo Guo6, Xiaotao Zhang1,2, Wenping Hu1,2.
Abstract
Electrochemical CO2 reduction (ECR) to value-added chemicals and fuels is regarded as an effective strategy to mitigate climate change caused by CO2 from excess consumption of fossil fuels. To achieve CO2 conversion with high faradaic efficiency, low overpotential, and excellent product selectivity, rational design and synthesis of efficient electrocatalysts is of significant importance, which dominates the development of ECR field. Individual organic molecules or inorganic catalysts have encountered a bottleneck in performance improvement owing to their intrinsic shortcomings. Very recently, organic-inorganic hybrid nanomaterials as electrocatalysts have exhibited high performance and interesting reaction processes for ECR due to the integration of the advantages of both heterogeneous and homogeneous catalytic processes, attracting widespread interest. In this work, the recent advances in designing various organic-inorganic hybrid nanomaterials at the atomic and molecular level for ECR are systematically summarized. Particularly, the reaction mechanism and structure-performance relationship of organic-inorganic hybrid nanomaterials toward ECR are discussed in detail. Finally, the challenges and opportunities toward controlled synthesis of advanced electrocatalysts are proposed for paving the development of the ECR field.Entities:
Keywords: COzzm3219902 reduction; electrocatalysts; energy conversion; molecular catalysts; organic-inorganic hybrids
Year: 2020 PMID: 32510861 DOI: 10.1002/smll.202001847
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281