Chen Jige, Chen Shunda, Gao Yi
Division of Interfacial Water and Key Laboratory of Interfacial Physics and Technology, Shanghai Institute of Applied Physics, Chinese Academy of Sciences , Shanghai 201800, China.
Department of Chemistry, University of California Davis , One Shields Avenue, Davis, California 95616, United States.
J Phys Chem Lett. 2016 Jul 7;7(13):2518-23. doi: 10.1021/acs.jpclett.6b00858. Epub 2016 Jun 21.
Thermal anisotropy along the basal plane of materials possesses both theoretical importance and application value in thermal transport and thermoelectricity. Though common two-dimensional materials may exhibit in-plane thermal anisotropy when suspended, thermal anisotropy would often disappear when supported on a substrate. In this Letter, we find a strong anisotropy enhancement of thermal energy transport in supported black phosphorene. The chiral preference of energy transport in the zigzag rather than the armchair direction is greatly enhanced by coupling to the substrate, up to a factor of approximately 2-fold compared to the suspended one. The enhancement originates from its puckered lattice structure, where the nonplanar armchair energy transport relies on the out-of-plane corrugation and thus would be hindered by the flexural suppression due to the substrate, while the planar zigzag energy transport is not. As a result, thermal conductivity of supported black phosphorene shows a consistent anisotropy enhancement under different temperatures and substrate coupling strengths.
材料基面上的热各向异性在热输运和热电领域兼具理论重要性与应用价值。尽管常见的二维材料在悬浮时可能表现出面内热各向异性,但在支撑于基底上时,热各向异性通常会消失。在本信函中,我们发现支撑态黑磷烯中的热能输运存在强烈的各向异性增强。与基底耦合时,之字形而非扶手椅形方向上能量输运的手性偏好大幅增强,与悬浮态相比提高了约2倍。这种增强源于其褶皱晶格结构,其中非平面的扶手椅形能量输运依赖于面外起伏,因此会因基底的弯曲抑制而受阻,而平面的之字形能量输运则不受此影响。结果,支撑态黑磷烯的热导率在不同温度和基底耦合强度下均呈现出一致的各向异性增强。