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用于在纳米尺度定制声子特性的砷化镓/磷化镓超晶格纳米线:对热工程的影响。

GaAs/GaP Superlattice Nanowires for Tailoring Phononic Properties at the Nanoscale: Implications for Thermal Engineering.

作者信息

K Sivan Aswathi, Abad Begoña, Albrigi Tommaso, Arif Omer, Trautvetter Johannes, Ruiz Caridad Alicia, Arya Chaitanya, Zannier Valentina, Sorba Lucia, Rurali Riccardo, Zardo Ilaria

机构信息

Department of Physics, University of Basel, 4056 Basel, Switzerland.

Institut de Ciència de Materials de Barcelona, ICMAB-CSIC, Campus UAB, 08193 Bellaterra, Spain.

出版信息

ACS Appl Nano Mater. 2023 Oct 5;6(19):18602-18613. doi: 10.1021/acsanm.3c04245. eCollection 2023 Oct 13.

Abstract

The possibility to tune the functional properties of nanomaterials is key to their technological applications. Superlattices, i.e., periodic repetitions of two or more materials in one or more dimensions, are being explored for their potential as materials with tailor-made properties. Meanwhile, nanowires offer a myriad of possibilities to engineer systems at the nanoscale, as well as to combine materials that cannot be put together in conventional heterostructures due to the lattice mismatch. In this work, we investigate GaAs/GaP superlattices embedded in GaP nanowires and demonstrate the tunability of their phononic and optoelectronic properties by inelastic light scattering experiments corroborated by ab initio calculations. We observe clear modifications in the dispersion relation for both acoustic and optical phonons in the superlattices nanowires. We find that by controlling the superlattice periodicity, we can achieve tunability of the phonon frequencies. We also performed wavelength-dependent Raman microscopy on GaAs/GaP superlattice nanowires, and our results indicate a reduction in the electronic bandgap in the superlattice compared to the bulk counterpart. All of our experimental results are rationalized with the help of ab initio density functional perturbation theory (DFPT) calculations. This work sheds fresh insights into how material engineering at the nanoscale can tailor phonon dispersion and open pathways for thermal engineering.

摘要

调节纳米材料功能特性的可能性是其技术应用的关键。超晶格,即在一个或多个维度上两种或更多种材料的周期性重复,因其作为具有定制特性材料的潜力而受到探索。同时,纳米线为在纳米尺度上设计系统以及组合由于晶格失配而无法在传统异质结构中结合的材料提供了无数可能性。在这项工作中,我们研究了嵌入GaP纳米线中的GaAs/GaP超晶格,并通过从头算计算证实的非弹性光散射实验证明了其声子和光电特性的可调性。我们观察到超晶格纳米线中声学和光学声子的色散关系有明显变化。我们发现通过控制超晶格周期性,可以实现声子频率的可调性。我们还对GaAs/GaP超晶格纳米线进行了波长相关的拉曼显微镜研究,我们的结果表明与块状材料相比,超晶格中的电子带隙减小。我们所有的实验结果都借助从头算密度泛函微扰理论(DFPT)计算得到了合理的解释。这项工作为纳米尺度的材料工程如何定制声子色散以及为热工程开辟途径提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46a4/10580287/08f6ba7aedfa/an3c04245_0001.jpg

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