PubMed · 42361226
Interface Excitons in van der Waals Sandwich Heterostructures.
Abstract
Exciton engineering in van der Waals heterostructures (vdWHs) is essential for next-generation optoelectronics, yet they normally require near-perfect stacking and are highly sensitive to moiré potentials. Here, we demonstrate a polarity-engineering strategy using a γ-InSe/transition metal dichalcogenide/γ-InSe sandwich heterostructure. The out-of-plane spontaneous polarization of γ-InSe intrinsically breaks interfacial inversion symmetry, giving rise to interface excitons (IFXs) that exhibit a linear Stark effect with an ultrasmall dipole moment of 0.15 e·nm. First-principles calculations and Kelvin probe force microscopy reveal asymmetric interfacial charge transfer governed by γ-InSe's polarity. Transient spectroscopy shows nonmonotonic relaxation dynamics, including a characteristic signal reversal that indicates pre-existing interfacial charge states. Our results establish that exciton dipole moments, interlayer coupling, and relaxation dynamics can be precisely tuned through material polarity and thickness. Polarity engineering thus provides a versatile and robust route to control excitonic properties in vdWHs, offering expanded design strategies for advanced excitonic and optoelectronic devices.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Chao Zhang, Yuting Li, Wenwei Chen, Kai Wu, Xiaoming Yuan, Linglong Zhang, Cheng Zhang, Guoyang Cao, Shaolong Wu, Jiajie Pei, Jinyang Xi, Xiaofeng Li, Jiong Yang. 2026-07-14. Interface Excitons in van der Waals Sandwich Heterostructures.. https://doi.org/10.1021/acsnano.6c06437
Cite the original work for its findings. Save a collection to share your selection of sources.