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郭志新

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现任西安交通大学材料学院教授,入选"青年拔尖人才计划"。复旦大学博士,先后在东京大学、德州大学奥斯汀分校从事研究,2019年加入西交大。致力于先进电子材料与器件的计算研究,聚焦芯片器件小型化的功耗挑战,发展界面结构与输运计算方法,提出协同调控界面量子效应降低信息传输能耗的新途径。发表SCI论文80余篇,一作/通讯50余篇,包括Phys. Rev. Lett.、Nat. Commun.等,总引用2900余次。先后主持5项国家级项目,并获省杰出青年基金资助

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祝贺冯慧峰同学在Physical Review B (Letter)上发表论文!

发布时间:2023-12-19  点击次数:

发布时间:2023-12-19

文章标题:祝贺冯慧峰同学在Physical Review B (Letter)上发表论文!

内容:

祝贺冯慧峰同学在Physical Review B (Letter)上发表论文!文章摘要如下:

 

Recently, the twist-angle effect on two-dimensional van der Waals (vdW) materials, such as bilayer graphene, has attracted great attention. Many novel electronic, magnetic, and even optical properties induced by such effects have been discovered. However, the twist-angle effect on a phononic property is not so remarkable. By investigating the thermal conductivity of twisted bilayer graphene (TBG), we reveal that the trivial twist-angle effect on a phononic property observed in previous studies is owing to the nonlocalization nature of phonons. This characteristic makes phonons hardly trapped by the weak interlayer potentials induced by the twist-angle dependent moiré pattern. We propose that the twist-angle effect can be effectively enhanced by increasing the interface coupling. Using a sandwich structure composed of hexagonal boron nitride and TBG, we demonstrate that the thermal conductivity of TBG can be either significantly increased or dramatically decreased under the synergistic modulation of interlayer-coupling strength and twist angle. Particularly, the twist-angle effect can lead to a nontrivial reduction of thermal conductivity by up to 78% when a strong interlayer coupling is applied. The reduction is several times larger than that observed in the freestanding TBG originating from the twist-angle dependent phonon scatterings induced by the edge phonons. The underlying mechanism for the giant twist-angle dependent thermal conductivity is further revealed based on phonon transport theory. Our findings provide a platform for achieving efficient twist-angle modulation on the phonon transport property of vdW materials.

 

文章链接:https://journals.aps.org/prb/abstract/10.1103/PhysRevB.108.L241405

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