Kagkoura Antonia, Skaltsas Theodosis, Tagmatarchis Nikos
Theoretical and Physical Chemistry Institute, National Hellenic Research Foundation, 48 Vassileos Constantinou Avenue, Athens, 11635, Greece.
Chemistry. 2017 Sep 21;23(53):12967-12979. doi: 10.1002/chem.201700242. Epub 2017 Aug 10.
Recently, nanomaterials that harvest solar energy and convert it to other forms of energy are of great interest. In this context, transition metal chalcogenides (TMCs) have recently been in the spotlight due to their optoelectronic properties that render them potential candidates mainly in energy conversion applications. Integration of TMCs onto a strong electron-accepting material, such as graphene, yielding novel TMC/graphene ensembles is of high significance, since photoinduced charge-transfer phenomena, leading to intra-ensemble charge separation, may occur. In this review, we highlight the utility of TMC/graphene ensembles, with a specific focus on latest trends in applications, while their synthetic routes are also discussed. In fact, TMC/graphene ensembles are photocatalytically active and superior as compared to intact TMCs analogues, when examined toward photocatalytic H evolution, dye degradation and redox transformations of organic compounds. Moreover, TMC/graphene ensembles have shown excellent prospect when employed in photovoltaics and biosensing applications. Finally, the future prospects of such materials are outlined.
最近,能够收集太阳能并将其转化为其他形式能量的纳米材料备受关注。在此背景下,过渡金属硫族化合物(TMCs)因其光电特性最近成为焦点,这些特性使其主要在能量转换应用中成为潜在候选材料。将TMCs整合到强电子接受材料(如石墨烯)上,产生新型的TMC/石墨烯组合具有重要意义,因为可能会发生光诱导电荷转移现象,导致组合体内电荷分离。在这篇综述中,我们强调了TMC/石墨烯组合的实用性,特别关注其应用的最新趋势,同时也讨论了它们的合成路线。事实上,当对光催化析氢、染料降解和有机化合物的氧化还原转化进行研究时,TMC/石墨烯组合具有光催化活性,并且与完整的TMCs类似物相比表现更优。此外,TMC/石墨烯组合在光伏和生物传感应用中也展现出了出色的前景。最后,概述了此类材料的未来前景。