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Atomistic mechanisms of codoping-induced p- to n-type conversion in nitrogen-doped graphene

机译:原子论的机制codoping-induced p -n型转换nitrogen-doped石墨烯

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摘要

It was recently shown that nitrogen-doped graphene (NG) can exhibit both p- and n-type characters depending on the C-N bonding nature, which represents a significant bottleneck for the development of graphene-based electronics. Based on first-principles calculations, we herein scrutinize the correlations between the atomic and electronic structures of NG and particularly explore the feasibility of converting p-type NG with pyridinic, pyrrolic, and nitrilic N atoms into n- or bipolar type by introducing an additional dopant atom. Of the nine candidates B, C, O, F, Al, Si, P, S, and Cl, we find that B-, Al-, and P-codoping can anneal even relatively large vacancy defects in p-type NG. It will be also shown that, while the NG with pyridinic N can be converted into the n-type via codoping, only a bipolar type conversion can be achieved for the NG with nitrilic or pyrrolic N. The amount of work function reduction was up to 0.64 eV for the pyridinic N next to a monovacancy. The atomistic origin of such diverse type changes is analyzed based on Mulliken and crystal orbital Hamiltonian populations, which provide us with a framework to connect the local bonding chemistry with the macroscopic electronic structure in doped and/or defective graphene. Moreover, we demonstrate that the proposed codoping scheme can recover the excellent charge transport properties of pristine graphene. Both the electronic type conversion and conductance recovery in codoped NG should have significant implications for the electronic and energy device applications.
机译:最近表明,nitrogen-doped石墨烯(NG)可以展示和p - n型人物根据碳氮键性质,代表一个重要的瓶颈石墨烯电子器件的发展。采用基于计算,我们仔细观察原子之间的相关性和电子结构NG和特别探索将p型NG的可行性与pyridinic pyrrolic, nitrilic N原子通过引入一个n -或双相类型额外的掺杂剂原子。C O F,铝,硅,P, S Cl,我们发现B -,Al -,甚至P-codoping退火可以相对在p型NG大空位缺陷。也表明,NG pyridinic N通过共掺可以转化为n型,只有一个可以实现双相情感类型转换为NG nitrilic或pyrrolic n函数减少的工作量是0.64eV pyridinic N monovacancy旁边。原子论的起源等不同类型的变化分析了基于马利肯和晶体轨道哈密顿的人群,为我们提供一个框架连接当地的化学成键与宏观的电子结构掺杂和/或有缺陷的石墨烯。可以证明该共掺方案恢复良好的电荷传输性质的原始石墨烯。转换和电导codoped NG复苏应该有重大影响电子和能源设备的应用程序。

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