Department of Mechanical and Aerospace Engineering, University of California, San Diego, La Jolla, California 92093, United States.
Nano Lett. 2011 Dec 14;11(12):5507-13. doi: 10.1021/nl203356h. Epub 2011 Nov 29.
Heterostructure core-shell semiconductor nanowires (NWs) have attracted tremendous interest recently due to their remarkable properties and potential applications as building blocks for nanodevices. Among their unique traits, thermal properties would play a significant role in thermal management of future heterostructure NW-based nanoelectronics, nanophotonics, and energy conversion devices, yet have been explored much less than others. Similar to their electronic counterparts, phonon spectrum and thermal transport properties could be modified by confinement effects and the acoustic mismatch at the core-shell interface in small diameter NWs (<20 nm). However, fundamental thermal measurement on thin core shell NWs has been challenging due to their small size and their expected low thermal conductivity (κ). Herein, we have developed an experimental technique with drastically improved sensitivity capable of measuring thermal conductance values down to ∼10 pW/K. Thermal conductivities of Ge and Ge-Si core-shell NWs with diameters less than 20 nm have been measured. Comparing the experimental data with Boltzmann transport models reveals that thermal conductivities of the sub-20 nm diameter NWs are further suppressed by the phonon confinement effect beyond the diffusive boundary scattering limit. Interestingly, core-shell NWs exhibit different temperature dependence in κ and show a lower κ from 300 to 388 K compared to Ge NWs, indicating the important effect of the core-shell interface on phonon transport, consistent with recent molecular dynamics studies. Our results could open up applications of Ge-Si core shell NWs for nanostructured thermoelectrics, as well as a new realm of tuning thermal conductivity by "phononic engineering".
异质结构核壳半导体纳米线(NWs)由于其独特的性质和在纳米器件构建块中的潜在应用而引起了极大的关注。在它们的独特特性中,热性质将在未来基于异质结构 NW 的纳米电子学、纳米光子学和能量转换器件的热管理中发挥重要作用,但相对于其他性质而言,其研究还较少。与电子类似,声子谱和热输运性质可以通过限制效应和小直径 NW(<20nm)中核壳界面的声学失配来进行修饰。然而,由于其尺寸小,并且预计热导率(κ)较低,因此对薄核壳 NW 的基本热测量一直具有挑战性。在此,我们开发了一种实验技术,其灵敏度大大提高,能够测量低至约 10pW/K 的热导数值。已经测量了直径小于 20nm 的 Ge 和 Ge-Si 核壳 NW 的热导率。将实验数据与玻尔兹曼输运模型进行比较表明,在扩散边界散射极限之外,声子限制效应进一步抑制了小于 20nm 直径 NW 的热导率。有趣的是,核壳 NW 在κ中表现出不同的温度依赖性,并且与 GeNW 相比,在 300 至 388K 的温度范围内κ较低,这表明核壳界面对声子输运的重要影响,与最近的分子动力学研究一致。我们的结果可以为基于 Ge-Si 核壳 NW 的纳米结构热电应用开辟应用,并为通过“声子工程”调节热导率开辟新的领域。