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扭曲双层石墨烯中声子的量子扭曲显微镜技术

Quantum twisting microscopy of phonons in twisted bilayer graphene.

作者信息

Birkbeck J, Xiao J, Inbar A, Taniguchi T, Watanabe K, Berg E, Glazman L, Guinea F, von Oppen F, Ilani S

机构信息

Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot, Israel.

National Institute for Materials Science, Tsukuba, Japan.

出版信息

Nature. 2025 May;641(8062):345-351. doi: 10.1038/s41586-025-08881-8. Epub 2025 Apr 23.

Abstract

The coupling between electrons and phonons is one of the fundamental interactions in solids, underpinning a wide range of phenomena, such as resistivity, heat conductivity and superconductivity. However, direct measurements of this coupling for individual phonon modes remain a substantial challenge. In this work, we introduce a new technique for mapping phonon dispersions and electron-phonon coupling (EPC) in van der Waals (vdW) materials. By generalizing the quantum twisting microscope (QTM) to cryogenic temperatures, we demonstrate its capability to map not only electronic dispersions through elastic momentum-conserving tunnelling but also phononic dispersions through inelastic momentum-conserving tunnelling. Crucially, the inelastic tunnelling strength provides a direct and quantitative measure of the momentum and mode-resolved EPC. We use this technique to measure the phonon spectrum and EPC of twisted bilayer graphene (TBG) with twist angles larger than 6°. Notably, we find that, unlike standard acoustic phonons, whose coupling to electrons diminishes as their momentum tends to zero, TBG exhibits a low-energy mode whose coupling increases with decreasing twist angle. We show that this unusual coupling arises from the modulation of the interlayer tunnelling by a layer-antisymmetric 'phason' mode of the moiré system. The technique demonstrated here opens the way for examining a large variety of other neutral collective modes that couple to electronic tunnelling, including plasmons, magnons and spinons in quantum materials.

摘要

电子与声子之间的耦合是固体中的基本相互作用之一,支撑着诸如电阻率、热导率和超导性等广泛的现象。然而,对单个声子模式的这种耦合进行直接测量仍然是一项重大挑战。在这项工作中,我们引入了一种新技术,用于绘制范德华(vdW)材料中的声子色散和电子 - 声子耦合(EPC)。通过将量子扭曲显微镜(QTM)推广到低温温度,我们展示了它不仅能够通过弹性动量守恒隧穿来绘制电子色散,还能通过非弹性动量守恒隧穿来绘制声子色散。至关重要的是,非弹性隧穿强度提供了动量和模式分辨的EPC的直接定量测量。我们使用这种技术来测量扭曲角大于6°的扭曲双层石墨烯(TBG)的声子谱和EPC。值得注意的是,我们发现,与标准声学声子不同,其与电子的耦合随着动量趋于零而减弱,TBG表现出一种低能模式,其耦合随着扭曲角的减小而增加。我们表明,这种不寻常的耦合源于莫尔系统的层反对称“相子”模式对层间隧穿的调制。这里展示的技术为研究与电子隧穿耦合的各种其他中性集体模式开辟了道路,包括量子材料中的等离激元、磁振子和自旋子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25f6/12058523/7d3681aa15e4/41586_2025_8881_Fig1_HTML.jpg

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