Kim Byunggi, Barbier-Chebbah Félix, Ogawara Yohei, Jalabert Laurent, Yanagisawa Ryoto, Anufriev Roman, Nomura Masahiro
Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro, Tokyo 153-8505, Japan.
Physics Department, Ecole Normale Supérieure, Université PSL, Paris 75005, France.
ACS Nano. 2024 Apr 16;18(15):10557-10565. doi: 10.1021/acsnano.3c12767. Epub 2024 Apr 4.
Nanostructured semiconductors promise functional thermal management for microelectronics and thermoelectrics through a rich design capability. However, experimental studies on anisotropic in-plane thermal conduction remain limited, despite the demand for directional heat dissipation. Here, inspired by an oriental wave pattern, a periodic network of bent wires, we investigate anisotropic in-plane thermal conduction in nanoscale silicon phononic crystals with the thermally dead volume. We observed the anisotropy reversal of the material thermal conductivity from 1.2 at 300 K to 0.8 at 4 K, with the reversal temperature of 80 K mediated by the transition from a diffusive to a quasi-ballistic regime. Our Monte Carlo simulations revealed that the backflow of the directional phonons induces the anisotropy reversal, showing that the quasi-ballistic phonon transport introduces preferential thermal conduction channels with anomalous temperature dependence. Accordingly, the anisotropy of the effective thermal conductivity varied from 2.7 to 5.0 in the range of 4-300 K, indicating an anisotropic heat manipulation capability. Our findings demonstrate that the design of nanowire networks enables the directional thermal management of electronic devices.
纳米结构半导体通过丰富的设计能力有望实现微电子和热电领域的功能性热管理。然而,尽管对定向散热有需求,但关于各向异性面内热传导的实验研究仍然有限。在此,受东方波浪图案——一种弯曲导线的周期性网络的启发,我们研究了具有热死体积的纳米级硅声子晶体中的各向异性面内热传导。我们观察到材料热导率的各向异性反转,从300 K时的1.2变为4 K时的0.8,反转温度为80 K,这是由从扩散到准弹道 regime 的转变介导的。我们的蒙特卡罗模拟表明,定向声子的回流导致了各向异性反转,表明准弹道声子输运引入了具有异常温度依赖性的优先热传导通道。因此,有效热导率的各向异性在4 - 300 K范围内从2.7变化到5.0,表明具有各向异性热操控能力。我们的研究结果表明,纳米线网络的设计能够实现电子设备的定向热管理。