Pressure Tuning of Layer-hybridized Excitons in Trilayer WSe2

Fuente: arXiv
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Main Authors: Zhao, Xuan, Song, Jing, Xiong, Wenqi, Hu, Qianying, Song, Yuxuan, He, Xin, Yang, Tianzhong, Liu, Song, Yuan, Shengjun, Yu, Hongyi, Xu, Yang
Format: Preprint
Published: 2025
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author Zhao, Xuan
Song, Jing
Xiong, Wenqi
Hu, Qianying
Song, Yuxuan
He, Xin
Yang, Tianzhong
Liu, Song
Yuan, Shengjun
Yu, Hongyi
Xu, Yang
author_facet Zhao, Xuan
Song, Jing
Xiong, Wenqi
Hu, Qianying
Song, Yuxuan
He, Xin
Yang, Tianzhong
Liu, Song
Yuan, Shengjun
Yu, Hongyi
Xu, Yang
contents We demonstrate dynamic pressure tuning (0-6.6 GPa) of layer-hybridized excitons in AB-stacked trilayer WSe$_2$ via diamond-anvil-cell-integrated reflectance spectroscopy. Pressure-controlled interlayer coupling manifests in enhanced energy-level anti-crossings and oscillator strength redistribution, with Stark shift analysis revealing a characteristic dipole moment reduction of 11%. Notably, the hybridization strength between the intra- and interlayer excitons triples from $\sim$10 meV to above $\sim$30 meV, exhibiting a near-linear scaling of 3.5$\pm$0.2 meV/GPa. Spectral density simulations resolve four distinct components, i.e., intralayer ground/excited and interlayer ground/excited excitons, with their relative weights transitioning from one component dominant to strongly hybridized at higher pressures. Our findings highlight the potential for controlling excitonic properties and engineering novel optoelectronic devices through interlayer compression.
format Preprint
id arxiv_https___arxiv_org_abs_2503_00395
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Pressure Tuning of Layer-hybridized Excitons in Trilayer WSe2
Zhao, Xuan
Song, Jing
Xiong, Wenqi
Hu, Qianying
Song, Yuxuan
He, Xin
Yang, Tianzhong
Liu, Song
Yuan, Shengjun
Yu, Hongyi
Xu, Yang
Materials Science
We demonstrate dynamic pressure tuning (0-6.6 GPa) of layer-hybridized excitons in AB-stacked trilayer WSe$_2$ via diamond-anvil-cell-integrated reflectance spectroscopy. Pressure-controlled interlayer coupling manifests in enhanced energy-level anti-crossings and oscillator strength redistribution, with Stark shift analysis revealing a characteristic dipole moment reduction of 11%. Notably, the hybridization strength between the intra- and interlayer excitons triples from $\sim$10 meV to above $\sim$30 meV, exhibiting a near-linear scaling of 3.5$\pm$0.2 meV/GPa. Spectral density simulations resolve four distinct components, i.e., intralayer ground/excited and interlayer ground/excited excitons, with their relative weights transitioning from one component dominant to strongly hybridized at higher pressures. Our findings highlight the potential for controlling excitonic properties and engineering novel optoelectronic devices through interlayer compression.
title Pressure Tuning of Layer-hybridized Excitons in Trilayer WSe2
topic Materials Science
url https://arxiv.org/abs/2503.00395