石墨
热电效应
石墨烯纳米带
材料科学
之字形的
塞贝克系数
凝聚态物理
密度泛函理论
双层
堆积
电子能带结构
热导率
纳米技术
石墨烯
计算化学
化学
热力学
物理
复合材料
生物化学
几何学
数学
有机化学
膜
作者
Débora Carvalho de Melo Rodrigues,L. L. Lage,Pedro Venezuela,A. Latgé
摘要
Carbon materials are vital for sustainable energy applications based on abundant and non-toxic raw materials. In this scenario, carbon nanoribbons have superior thermoelectric properties in comparison with their 2D material counterparts, owing to their particular electronic and transport properties. Therefore, we explore the electronic and thermoelectric properties of bilayer α-graphyne nanoribbons (α-BGyNRs) by means of density functional theory, tight-binding, and the non-equilibrium Green's functions (NEGF) method. Our calculations indicate that Ab stacking is the most stable configuration regardless of the edge type. The band structure presents finite band gaps with different features for armchair and zigzag nanoribbons. Concerning the thermoelectric quantities, the Seebeck coefficient is highly sensitive to the width and edge type, while its room-temperature values can achieve a measurable mV K-1 scale. The electric conductance is found to increase due to layering, thus enhancing the power factor for α-BGyNRs compared with single nanoribbons. These findings therefore indicate the possibility of engineering such systems for thermal nanodevices.
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