First Principle Analysis of Li-Doped Armchair Graphene Nanoribbons for Nanoscale Metal Interconnect Applications

V. Nishad, Rohit Sharma
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引用次数: 1

Abstract

In this paper, the effect of alkali metal, Li, as substitutional doping in armchair Graphene Nanoribbons (AGNRs) is investigated. Electronic and transport properties and structural stability of Li-doped AGNRs are investigated using density functional theory (DFT) and non-equilibrium Green's function (NEGF). First principle calculations have been performed on pristine (undoped), center Li-doped, one-edge Li- terminated and both-edge Li-terminated AGNRs. Our calculations reveal that all the structures analyzed are thermodynamically stable. Based on transmission spectrum and standard two-probe setup based I-V characteristics of all the considered configurations, center Li-doped AGNRs are found to be the most suitable candidate for on-chip interconnect applications. For center Li-doped AGNRs, kinetic inductance, Lk, and quantum capacitance, CQ, are extracted as 12.51 nH/μm and 2.7 fF/μm, respectively, which results in nearly 7x, 2.5x and 1.1x higher current as compared to pristine, one-edge Li-terminated and both-edge Li-terminated AGNRs, respectively. We have also compared our results with center Fe-doped AGNRs, where center Li-doped AGNRs provide 1.71x higher current. Our study suggests about the substitutional doping of Li at the center in AGNRs make it an excellent metal that can be used in advanced nanoscale interconnect applications. In addition, this study can be extended towards the use of multiple layers of center Li-doped AGNRs in future that may further improve the interconnect performance.
纳米级金属互连应用中锂掺杂扶手型石墨烯纳米带的第一性原理分析
本文研究了碱金属Li作为替代掺杂在扶手椅型石墨烯纳米带(AGNRs)中的作用。利用密度泛函理论(DFT)和非平衡格林函数(NEGF)研究了掺锂AGNRs的电子、输运性质和结构稳定性。对原始(未掺杂)、中心掺锂、单端锂和双端锂的agnr进行了第一性原理计算。我们的计算表明,所分析的所有结构都是热力学稳定的。基于所有考虑配置的传输频谱和基于I-V特性的标准双探头设置,发现中心li掺杂agnr是片上互连应用的最合适候选。对于中心掺锂的AGNRs,提取的动态电感Lk和量子电容CQ分别为12.51 nH/μm和2.7 fF/μm,与原始、单端锂端和双端锂端AGNRs相比,电流分别高出近7倍、2.5倍和1.1倍。我们还将我们的结果与中心掺铁AGNRs进行了比较,其中中心掺锂AGNRs提供了1.71倍的高电流。我们的研究表明,Li在AGNRs中心的取代掺杂使其成为一种可以用于先进纳米级互连应用的优秀金属。此外,本研究可以扩展到未来多层中心掺锂AGNRs的使用,这可能会进一步提高互连性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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