热催化反应中的二维纳米材料:过渡金属二硫族化合物、金属磷三硫族化合物和MXenes

S. Shirvani, M. Ghashghaee, Kevin J. Smith
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引用次数: 9

摘要

自成功发现机械剥离石墨烯以来,二维(2D)纳米材料引起了人们的强烈兴趣。其独特的化学、机械、光学和电学性能已被广泛应用,包括电气/光电器件、太阳能电池、传感器、膜和电/光催化。然而,二维纳米材料作为热催化剂的应用并不常见,因此关于其活性和稳定性的广泛问题仍然存在。本文综述了二维过渡金属二硫族化合物(TMDs)、金属磷三硫族化合物(MPTs)和MXenes作为热催化剂的应用。数据表明,在大多数情况下,将催化剂的厚度减小到单层或几层原子的厚度,可以显著提高产物的选择性和反应速率。然而,挑战依然存在,包括在典型的热催化操作条件下,二维纳米结构的热稳定性和化学稳定性较低,暴露表面容易中毒,活性迅速丧失。此外,二维纳米结构的合成过程复杂,使得可重复性和规模化变得困难。这篇综述确定了知识空白,以引起人们对这些独特材料的关注,这些材料有可能作为热催化剂产生重大影响。
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Two-dimensional Nanomaterials in Thermocatalytic Reactions: Transition Metal Dichalcogenides, Metal Phosphorus Trichalcogenides and MXenes
ABSTRACT Two-dimensional (2D) nanomaterials have attracted intense interest since the successful discovery of mechanically exfoliated graphene. Their unique chemical, mechanical, optical, and electrical properties have been exploited in a wide range of applications, including electrical/optoelectrical devices, solar cells, sensors, membranes, and electro/photocatalysis. However, the application of 2D nanomaterials as thermocatalysts is much less common such that a wide range of questions regarding their activity and stability remain. Herein, the application of 2D transition metal dichalcogenides (TMDs), metal phosphorus trichalcogenides (MPTs) and MXenes as thermocatalysts is reviewed. The data indicate that in most cases, reducing the thickness of the catalyst to that of a single or a few layers of atoms, leads to a significant improvement in product selectivity and reaction rate. However, challenges remain, including the low thermal and chemical stability of 2D nanostructures at typical thermocatalytic operating conditions, facile poisoning of the exposed surface, and rapid loss of activity. In addition, the synthesis procedures for 2D nanostructures are complex, making reproducibility and scale-up difficult. This review identifies knowledge gaps to draw attention to these unique materials that have the potential for significant impact as thermocatalysts.
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