Signatures of moir\'e-trapped valley excitons in MoSe$_2$/WSe$_2$ heterobilayers
Kyle L. Seyler, Pasqual Rivera, Hongyi Yu, Nathan P. Wilson, Essance, L. Ray, David Mandrus, Jiaqiang Yan, Wang Yao, Xiaodong Xu

TL;DR
This study provides experimental evidence of moiré-trapped interlayer valley excitons in MoSe₂/WSe₂ heterobilayers, revealing narrow linewidths, specific g-factors, and polarization properties that confirm their origin in a moiré potential.
Contribution
First experimental detection of moiré-trapped interlayer valley excitons in 2D heterobilayers, demonstrating their optical and magnetic properties and confirming theoretical predictions.
Findings
Narrow linewidth photoluminescence near interlayer exciton energy.
Homogeneous g-factors matching free interlayer excitons.
Strong circular polarization indicating preserved symmetry.
Abstract
The creation of moir\'e patterns in crystalline solids is a powerful approach to manipulate their electronic properties, which are fundamentally influenced by periodic potential landscapes. In 2D materials, a moir\'e pattern with a superlattice potential can form by vertically stacking two layered materials with a twist and/or finite lattice constant difference. This unique approach has led to emergent electronic phenomena, including the fractal quantum Hall effect, tunable Mott insulators, and unconventional superconductivity. Furthermore, theory predicts intriguing effects on optical excitations by a moir\'e potential in 2D valley semiconductors, but these signatures have yet to be experimentally detected. Here, we report experimental evidence of interlayer valley excitons trapped in a moir\'e potential in MoSe/WSe heterobilayers. At low temperatures, we observe…
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