Zhou E, Wei Donghai, Wu Jing, Qin Guangzhao, Hu Ming
State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, College of Mechanical and Vehicle Engineering, Hunan University, Changsha, 410082, P. R. China.
Department of Mechanical Engineering, University of South Carolina, Columbia, SC, 29208, USA.
Phys Chem Chem Phys. 2022 Jul 27;24(29):17479-17484. doi: 10.1039/d2cp01117d.
The two-dimensional (2D) materials, represented by graphene, stand out in the electrical industry applications of the future and have been widely studied. As commonly existing in electronic devices, the electric field has been extensively utilized to modulate the performance. However, how the electric field regulates thermal transport is rarely studied. Herein, we investigate the modulation of thermal transport properties by applying an external electric field ranging from 0 to 0.4 V Å, with bilayer graphene, monolayer silicene, and germanene as study cases. The monotonically decreasing trend of thermal conductivity in all three materials is revealed. A significant effect on the scattering rate is found to be responsible for the decreased thermal conductivity driven by the electric field. Further evidence shows that the reconstruction of internal electric field and generation of induced charges lead to increased scattering rate from strong phonon anharmonicity. Thus, the ultralow thermal conductivity emerges with the application of external electric fields. Applying an external electric field to regulate thermal conductivity illustrates a constructive idea for highly efficient thermal management.
以石墨烯为代表的二维材料在未来的电气工业应用中脱颖而出,并已得到广泛研究。由于电场普遍存在于电子设备中,因此已被广泛用于调节性能。然而,电场如何调节热传输却鲜有研究。在此,我们以双层石墨烯、单层硅烯和锗烯为研究对象,研究了在0至0.4 V Å的外部电场作用下热传输特性的调制。揭示了所有三种材料的热导率单调下降趋势。发现电场驱动的热导率降低主要是由散射率的显著变化引起的。进一步的证据表明,内部电场的重构和感应电荷的产生导致了强声子非谐性引起的散射率增加。因此,施加外部电场会出现超低热导率。施加外部电场来调节热导率为高效热管理提供了一个建设性的思路。