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Heteroatom-doped graphene-based materials for sustainable energy applications: A review

机译:用于可持续能源应用的杂原子掺杂的基于石墨烯材料:综述

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摘要

The demand for sustainable energy storage and production is vital and continues to grow with increasing human population. Energy utilization and environmental protection demand urgent attention in the development of energy devices, including the expansion and assessment of earth abundant and inexpensive materails. Recently, two-dimensional (2D) structured graphene has emerged as an outstanding energy material due to its excellent physicochemical properties, for example, high thermal and electrical conductivity, high surface area, strong mechanical strength, and an excellent chemical stability. However, pure graphene has a band gap of zero significantly limiting its application as a material. Among the various approaches used to alter the properties of graphene is doping with a heteroatom, which has been shown to be an efficient process in tailoring the properties of 2D-graphene. Heteroatom-doped graphene has several improved physicochemical properties, making graphene a favorable material for application in various fields. In this review, we report the usage and advancement of heteroatom-doped graphene materials in various energy conversion and storage technologies, including supercapacitors, batteries, dye-sensitized solar cells, and hydrogen production from electrocatalytic water splitting. Furthermore, we have also highlighted the recent developments made to date and systematically discuss physicochemical mechanisms, and the precise advantages obtained by the doping of heteroatoms. Finally, the challenges and future perspectives for heteroatom-doped graphene materials are outlined. The information provided in this review should be useful to any researchers involved in the field of graphene research for wide-ranging applications, and structural-oriented (morphology, structure, size and composition) research.
机译:可持续能源储存和生产的需求是至关重要的,继续增长的人口增长。能源利用和环境保护要求迫切关注的能源设备,包括扩大和地球丰富且廉价materails评估的发展。最近,二维(2D)结构化的石墨烯已经成为一个突出的能量材料由于其优异的物理化学性质,例如,高导热和导电性,高比表面积,强的机械强度和优异的化学稳定性。然而,纯石墨烯具有零的带隙显著限制其作为材料应用。间用于改变石墨烯的特性的各种方法是掺杂有杂原子,这已被证明是在剪裁2D石墨烯的特性的有效方法。掺杂原子的石墨烯具有几种改进的物理化学性质,使得石墨烯的有利材料为在各个领域的应用。在这篇综述中,我们报告杂原子掺杂的石墨烯材料在各种能量转换和存储技术,包括超级电容器,电池,染料敏化太阳能电池,和制氢从电分解水的使用情况和进步。此外,我们还强调迄今取得的最新发展,系统地讨论物理化学机制,并通过杂原子掺杂获得精确的优点。最后,对于掺杂原子的石墨烯材料所面临的挑战和未来前景进行了概述。该评价所提供的信息应该是有用的参与石墨烯研究领域为广泛应用的任何研究人员,和结构导向(形态,结构,尺寸和组成)的研究。

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