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Group 6 transition metal dichalcogenide nanomaterials: synthesis, applications and future perspectives

机译:第6组过渡金属二甲硅藻纳米材料:合成,应用和未来的观点

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Group 6 transition metal dichalcogenides (G6-TMDs), most notably MoS2, MoSe2, MoTe2, WS2 and WSe2, constitute an important class of materials with a layered crystal structure. Various types of G6-TMD nanomaterials, such as nanosheets, nanotubes and quantum dot nano-objects and flower-like nanostructures, have been synthesized. High thermodynamic stability under ambient conditions, even in atomically thin form, made nanosheets of these inorganic semiconductors a valuable asset in the existing library of two-dimensional (2D) materials, along with the well-known semimetallic graphene and insulating hexagonal boron nitride. G6-TMDs generally possess an appropriate bandgap (1-2 eV) which is tunable by size and dimensionality and changes from indirect to direct in monolayer nanosheets, intriguing for (opto) electronic, sensing, and solar energy harvesting applications. Moreover, rich intercalation chemistry and abundance of catalytically active edge sites make them promising for fabrication of novel energy storage devices and advanced catalysts. In this review, we provide an overview on all aspects of the basic science, physicochemical properties and characterization techniques as well as all existing production methods and applications of G6-TMD nanomaterials in a comprehensive yet concise treatment. Particular emphasis is placed on establishing a linkage between the features of production methods and the specific needs of rapidly growing applications of G6-TMDs to develop a production-application selection guide. Based on this selection guide, a framework is suggested for future research on how to bridge existing knowledge gaps and improve current production methods towards technological application of G6-TMD nanomaterials.
机译:第6组过渡金属二甲基甲基化物(G6-TMD),最典型的MOS2,MOSE2,MOTE2,WS2和WSE2构成具有层状晶体结构的重要材料。已经合成了各种类型的G6-TMD纳米材料,例如纳米片,纳米管和量子点纳米物体和花状纳米结构。在环境条件下的高热力学稳定性,即使以原子上薄的形式,也使这些无机半导体的纳米片在现有的二维(2D)材料文库中具有有价值的资产,以及众所周知的半金属石墨烯和绝缘六边形氮化物。 G6-TMD通常具有适当的带隙(1-2EV),其通过尺寸和维度可调,并且从间接地引导在单层纳米片中,扼杀(OPTO)电子,传感和太阳能收集应用。此外,丰富的嵌入化学和丰富的催化活性边缘位点使其承诺制造新的储能装置和先进的催化剂。在本次审查中,我们在综合但简洁的治疗中概述了基础科学,物理化学性质和表征技术的所有方面以及G6-TMD纳米材料的所有现有生产方法和应用。特别强调建立生产方法的特征与G6-TMDS快速增长的特定需求之间的联系,以开发生产应用选择指南。基于此选择指南,建议框架以促进关于如何弥合现有知识差距的研究,并改善G6-TMD纳米材料技术应用的电流生产方法。

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