Two-dimensional ultrathin metal-based nanosheets for photocatalytic CO2 conversion to solar fuels
Artificially simulated photosynthesis has created substantial curiosity as the majority of efforts in this arena have been aimed to upsurge solar fuel efficiencies for commercialization. The layered inorganic 2D nanosheets offer considerably higher tunability of their chemical surface, physicochemic...
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Veröffentlicht in: | Journal of environmental management 2022-07, Vol.313, p.114916-114916, Article 114916 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Artificially simulated photosynthesis has created substantial curiosity as the majority of efforts in this arena have been aimed to upsurge solar fuel efficiencies for commercialization. The layered inorganic 2D nanosheets offer considerably higher tunability of their chemical surface, physicochemical properties and catalytic activity. Despites the intrinsic advantages of such metal-based materials viz., metal oxides, transition metal dichalcogenides, metal oxyhalides, metal organic frameworks, layered double hydroxide, MXene's, boron nitride, black phosphorous and perovskites, studies on such systems are limited for applications in photocatalytic CO2 reduction. The role of metal-based layers for CO2 conversion and new strategies such as surface modifications, defect generation and heterojunctions to optimize their functionalities are discussed in this review. Research prospects and technical challenges for future developments of layered 2D metal-based nanomaterials are critically discussed.
•Challenges in metal-based 2D nanosheets for photocatalytic CO2 conversion are discussed.•Increase of efficiency via metal-based nanocomposites are presented.•Importance of the catalytic pathway is discussed.•Prospects for future research efforts are discussed for the 2D metallic nanosheets. |
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ISSN: | 0301-4797 1095-8630 |
DOI: | 10.1016/j.jenvman.2022.114916 |