Journalartikel
Autorenliste: Wang, Mengjiao; Langer, Michal; Altieri, Roberto; Crisci, Matteo; Osella, Silvio; Gatti, Teresa
Jahr der Veröffentlichung: 2024
Seiten: 9245-9284
Zeitschrift: ACS Nano
Bandnummer: 18
Heftnummer: 13
ISSN: 1936-0851
eISSN: 1936-086X
DOI Link: https://doi.org/10.1021/acsnano.3c12274
Verlag: American Chemical Society
Abstract:
Two-dimensional (2D) layered nanomaterial heterostructures, arising from the combination of 2D materials with other low-dimensional species, feature a large surface area to volume ratio, which provides a high density of active sites for catalytic applications and for (photo)electrocatalysis (PEC). Meanwhile, their electronic band structure and high electrical conductivity enable efficient charge transfer (CT) between the active material and the substrate, which is essential for catalytic activity. In recent years, researchers have demonstrated the potential of a range of 2D material interfaces, such as graphene, graphitic carbon nitride (g-C3N4), metal chalcogenides (MCs), and MXenes, for (photo)electrocatalytic applications. For instance, MCs such as MoS2 and WS2 have shown excellent catalytic activity for hydrogen evolution, while graphene and MXenes have been used for the reduction of carbon dioxide to higher value chemicals. However, despite their great potential, there are still major challenges that need to be addressed to fully realize the potential of 2D materials for PEC. For example, their stability under harsh reaction conditions, as well as their scalability for large-scale production are important factors to be considered. Generating heterojunctions (HJs) by combining 2D layered structures with other nanomaterials is a promising method to improve the photoelectrocatalytic properties of the former. In this review, we inspect thoroughly the recent literature, to demonstrate the significant potential that arises from utilizing 2D layered heterostructures in PEC processes across a broad spectrum of applications, from energy conversion and storage to environmental remediation. With the ongoing research and development, it is likely that the potential of these materials will be fully expressed in the near future.
Zitierstile
Harvard-Zitierstil: Wang, M., Langer, M., Altieri, R., Crisci, M., Osella, S. and Gatti, T. (2024) Two-Dimensional Layered Heterojunctions for Photoelectrocatalysis, ACS Nano, 18(13), pp. 9245-9284. https://doi.org/10.1021/acsnano.3c12274
APA-Zitierstil: Wang, M., Langer, M., Altieri, R., Crisci, M., Osella, S., & Gatti, T. (2024). Two-Dimensional Layered Heterojunctions for Photoelectrocatalysis. ACS Nano. 18(13), 9245-9284. https://doi.org/10.1021/acsnano.3c12274
Schlagwörter
2D layered nanostructures; 2D material synthesis; ARTIFICIAL PHOTOSYNTHESIS; charge transfer; CO2 REDUCTION; computational modulation; DENSITY-FUNCTIONAL THEORY; DOUBLE HYDROXIDE; ELASTIC BAND METHOD; ENHANCED PHOTOELECTROCHEMICAL PERFORMANCE; heterojunctions; IN-SITU CONSTRUCTION; light energy conversion; PHOTOCATALYTIC ACTIVITY; photoelectrocatalysis; photoelectrochemical applications