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基于2,6-聚薁链的二维碳同素异形体和纳米带:堆积稳定性和电子性质

Two-Dimensional Carbon Allotropes and Nanoribbons based on 2,6-Polyazulene Chains: Stacking Stabilities and Electronic Properties.

作者信息

Li Jin, Li Shifang, Ouyang Tao, Zhang Chunxiao, Tang Chao, He Chaoyu, Zhong Jianxin

机构信息

Hunan Key Laboratory of Micro-Nano Energy Materials and Devices, Laboratory for Quantum Engineering and Micro-Nano Energy Technology and School of Physics and Optoelectronics, Xiangtan University, Hunan 411105, P. R. China.

出版信息

J Phys Chem Lett. 2021 Jan 21;12(2):732-738. doi: 10.1021/acs.jpclett.0c03518. Epub 2021 Jan 6.

Abstract

The previously predicted phagraphene [Wang et al., Nano Lett. 15, 6182 (2015)] and a recently proposed TPH-graphene have been synthesized from fusion of 2,6-polyazulene chain (5-7 chain) in a recent experiment [Fan et al., J. Am. Chem. Soc., 141, 17713 (2019)]. Theoretically, phagraphene and TPH-graphene can be considered as the combinations of the 5-7 chains with distinct 6-6-6 and 4-7-7 interfacial stacking manners, respectively. In this work, we propose another new graphene allotrope, named as penta-hex-hepta-graphene (PHH-graphene), which can be constructed by coupling the synthesized 5-7 chains with a new type of 5-7-6 stacking interface. It is found that the PHH-graphene is dynamically and thermally stable, and especially notable, the total energy of PHH-graphene is lower than that of synthesized TPH-graphene. Thus, it is highly possible that PHH-graphene can be realized through assembly of 5-7 chains. We have systematically investigated the electronic properties of these three graphene allotropes and their nanoribbons. The results show that PHH-graphene is a type-I semimetal with a highly anisotropic Dirac cone similar to phagraphene, while TPH-graphene is a metal. Their nanoribbons exhibit different electronic band structures as the number () of 5-7 chains increases. For TPH-graphene nanoribbons, they become metal rapidly as ≥ 2. The nanoribbons of the semimetallic phagraphene and PHH-graphene are narrow band gap semiconductors with gaps decreasing as increases, which are similar to the graphene nanoribbons. We also find that the band gaps of PHH-graphene nanoribbons exhibit two distinct families with = 2 and = 2 + 1, which can be understood by the width-dependent symmetries of the system.

摘要

先前预测的吞噬石墨烯[Wang等人,《纳米快报》15, 6182 (2015)]和最近提出的TPH-石墨烯已在最近的一项实验中通过2,6-聚薁链(5-7链)的融合合成得到[Fan等人,《美国化学会志》,141, 17713 (2019)]。从理论上讲,吞噬石墨烯和TPH-石墨烯可分别视为具有不同的6-6-6和4-7-7界面堆叠方式的5-7链的组合。在本工作中,我们提出了另一种新型的石墨烯同素异形体,命名为五-六-七石墨烯(PHH-石墨烯),它可通过将合成的5-7链与一种新型的5-7-6堆叠界面耦合构建而成。研究发现,PHH-石墨烯在动力学和热学上是稳定的,特别值得注意的是,PHH-石墨烯的总能量低于合成的TPH-石墨烯。因此,通过5-7链的组装很有可能实现PHH-石墨烯。我们系统地研究了这三种石墨烯同素异形体及其纳米带的电子性质。结果表明,PHH-石墨烯是一种I型半金属,具有与吞噬石墨烯相似的高度各向异性的狄拉克锥,而TPH-石墨烯是一种金属。随着5-7链数量()的增加,它们的纳米带表现出不同的电子能带结构。对于TPH-石墨烯纳米带,当≥2时它们迅速变为金属。半金属性的吞噬石墨烯和PHH-石墨烯的纳米带是窄带隙半导体,其带隙随着的增加而减小,这与石墨烯纳米带相似。我们还发现,PHH-石墨烯纳米带的带隙表现出两个不同的家族,分别对应= 2和= 2 + 1,这可以通过系统的宽度相关对称性来理解。

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