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多孔硅烯纳米带热电效率的提高。

Enhanced thermoelectric efficiency of porous silicene nanoribbons.

作者信息

Sadeghi Hatef, Sangtarash Sara, Lambert Colin J

机构信息

Quantum Technology Centre, Lancaster University, LA1 4YB Lancaster, UK.

出版信息

Sci Rep. 2015 Mar 30;5:9514. doi: 10.1038/srep09514.

Abstract

There is a critical need to attain new sustainable materials for direct upgrade of waste heat to electrical energy via the thermoelectric effect. Here we demonstrate that the thermoelectric performance of silicene nanoribbons can be improved dramatically by introducing nanopores and tuning the Fermi energy. We predict that values of electronic thermoelectric figure of merit ZTe up to 160 are achievable, provided the Fermi energy is located approximately 100 meV above the charge neutrality point. Including the effect of phonons yields a value for the full figure of merit of ZT = 3.5. Furthermore the sign of the thermopower S can be varied with achievable values as high as S = +/- 500 μV/K. As a method of tuning the Fermi energy, we analyse the effect of doping the silicene with either a strong electron donor (TTF) or a strong electron acceptor (TCNQ) and demonstrate that adsorbed layers of the former increases ZTe to a value of 3.1, which is insensitive to temperature over the range 100 K - 400 K. This combination of a high, temperature-insensitive ZTe, and the ability to choose the sign of the thermopower identifies nanoporous silicene as an ideal thermoelectric material with the potential for unprecedented performance.

摘要

迫切需要获得新型可持续材料,以便通过热电效应将废热直接转化为电能。在此,我们证明通过引入纳米孔和调节费米能,可以显著提高硅烯纳米带的热电性能。我们预测,只要费米能位于电荷中性点上方约100meV处,电子热电品质因数ZTe的值可达160。考虑声子的影响后,总品质因数ZT的值为3.5。此外,热电势S的符号可以改变,可达S = +/- 500μV/K。作为调节费米能的一种方法,我们分析了用强电子供体(TTF)或强电子受体(TCNQ)掺杂硅烯的效果,并证明前者的吸附层可将ZTe提高到3.1,在100K - 400K温度范围内对温度不敏感。这种高温不敏感的高ZTe以及选择热电势符号的能力,使得纳米多孔硅烯成为一种具有前所未有的性能潜力的理想热电材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68c9/4377624/c215b418bcea/srep09514-f1.jpg

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