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首页> 外文期刊>IEEE transactions on nanotechnology >First-Principle Analysis of Transition Metal Edge-Passivated Armchair Graphene Nanoribbons for Nanoscale Interconnects
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First-Principle Analysis of Transition Metal Edge-Passivated Armchair Graphene Nanoribbons for Nanoscale Interconnects

机译:过渡金属边缘钝化扶手椅Graphene纳米型纳米级互连的第一原理分析

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In this article, the importance of edge-passivation with transition metals (TM) in armchair graphene nanoribbons (AGNRs) is described for interconnect applications. The electronic and transport properties of TM edge-passivated AGNRs structure is found to be exceptional in comparison to hydrogen edge-passivated AGNRs. Detailed analysis of binding energy, E- k diagram, density of states (DOS), transmission spectrum, current-voltage characteristics and number of conduction channels of TM edge-passivated AGNRs configuration has been performed using density functional theory and non-equilibrium Green function technique. The significant interconnect performance metrics such as delay, energy-delay-product (EDP) have also been evaluated to justify the importance of projected work. The TMs considered in this work are Palladium (Pd), Platinum (Pt), Rhodium (Rh) and Ruthenium (Ru). It is observed that both-side edge-passivation provides better results as compared to single-side. Ru is the potential TM that provides higher currents among all when used in both-edge passivated AGNRs. Ru-AGNR-Ru shows a 10.6x lesser delay and 9.2x lesser EDP as compared to H-AGNR-H interconnects. Therefore, taking all the results into account, both edge Ru-passivated AGNRs i.e., Ru-AGNR-Ru, with the most stable structure in both side TM edge passivation, proves to be the best contender for future interconnect applications.
机译:在本文中,描述了在扶手椅中与过渡金属(TM)的边缘钝化的重要性用于互连应用。与氢边缘钝化的AGNRS相比,发现TM边缘钝化AGNR结构的电子和传输属性是出色的。绑定能量的详细分析,e- <斜体XMLNS:mml =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink” > K 图,使用密度泛函理论和非平衡绿色功能技术进行了TM边缘钝化AGNRS配置的状态(DOS),透射光谱,电流 - 电压特性和传导通道的数量。还评估了延迟,能量 - 延迟产品(EDP)等重要的互连性能指标,以证明预计工作的重要性。在这项工作中考虑的TMS是钯(Pd),铂(Pt),铑(RH)和钌(Ru)。观察到,与单侧相比,侧面边缘钝化提供了更好的结果。 ru是在双边钝化的AGNS中使用时提供更高电流的潜在的TM。与H-AGNR-H互连相比,Ru-Agnr-Ru显示10.6x较小的延迟和9.2x小EDP。因此,将所有结果考虑在内,两个边缘ru-in-钝化的AGNRS i.E.,Ru-Agnr-Ru,在侧面TM边缘钝化中具有最稳定的结构,证明是未来互连应用的最佳竞争者。

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