Ouyang Tao, Hu Ming
Institute of Mineral Engineering, Division of Materials Science and Engineering, Faculty of Georesources and Materials Engineering, Rheinisch-Westfaelische Technische Hochschule (RWTH Aachen University), 52064 Aachen, Germany.
Nanotechnology. 2014 Jun 20;25(24):245401. doi: 10.1088/0957-4484/25/24/245401. Epub 2014 May 23.
Graphyne, an allotrope of graphene, is currently a hot topic in the carbon-based nanomaterials research community. Taking beta-graphyne as an example, we performed a comprehensive study of thermal transport and related thermoelectric properties by means of nonequilibrium Green's function (NEGF). Our simulation demonstrated that thermal conductance of beta-graphyne is only approximately 26% of that of the graphene counterpart and also shows evident anisotropy. Meanwhile, thermal conductance of armchair beta-graphyne nanoribbons (A-BGYNRs) presents abnormal stepwise width dependence. As for the thermoelectric property, we found that zigzag beta-graphyne nanoribbons (Z-BGYNRs) possess superior thermoelectric performance with figure of merit value achieving 0.5 at room temperature, as compared with graphene nanoribbons (~0.05). Aiming at obtaining a better thermoelectric coefficient, we also investigated Z-BGYNRs with geometric modulations. The results show that the thermoelectric performance can be enhanced dramatically (figure of merit exceeding 1.5 at room temperature), and such enhancement strongly depends on the width of the nanoribbons and location and quantity of geometric modulation. Our findings shed light on transport properties of beta-graphyne as high efficiency thermoelectrics. We anticipate that our simulation results could offer useful guidance for the design and fabrication of future thermoelectric devices.
石墨炔是石墨烯的一种同素异形体,目前是碳基纳米材料研究领域的一个热门话题。以β-石墨炔为例,我们通过非平衡格林函数(NEGF)对其热输运及相关热电性质进行了全面研究。我们的模拟表明,β-石墨炔的热导率仅约为石墨烯的26%,且表现出明显的各向异性。同时,扶手椅型β-石墨炔纳米带(A-BGYNRs)的热导率呈现出异常的阶梯状宽度依赖性。至于热电性质,我们发现锯齿型β-石墨炔纳米带(Z-BGYNRs)具有优异的热电性能,室温下其优值达到0.5,而石墨烯纳米带的优值约为0.05。为了获得更好的热电系数,我们还研究了经过几何调制的Z-BGYNRs。结果表明,热电性能可显著增强(室温下优值超过1.5),且这种增强强烈依赖于纳米带的宽度以及几何调制的位置和数量。我们的研究结果揭示了β-石墨炔作为高效热电材料的输运性质。我们预计,我们的模拟结果可为未来热电装置的设计和制造提供有用的指导。