Optical heterostructure in a two-dimensional organic crystal
Abstract
Abstract Optical heterostructures, which feature spatially heterogeneous optical properties at the subwavelength scale, represent a key frontier for next-generation integrated photonics and optoelectronics. While typically realized by joining dissimilar materials, achieving such heterogeneity in single-component systems has remained a fundamental challenge. Here, we report an intrinsic optical heterostructure in a uniform organic nanosheet, manifesting as strongly enhanced fluorescence in the inner zone compared to the outer zone. We demonstrate that this emission heterogeneity stems from a spatially localized solid-state transition in the central top layer, which transforms the initial single crystal into an out-of-plane twin structure and significantly enhances the radiative recombination efficiency. This transition is driven by the competitive interplay between molecule-substrate and intermolecular interactions, as corroborated by multiscale structural, optical, and theoretical analyses. Our findings not only establish a platform for realizing optical heterostructures in organic materials but also open avenues for exploring structural-dynamics-governed photonic phenomena, offering broad implications for future materials design and micro-optical applications.
Article Details
Authors (18)
Kan Liao
Junran Zhang
Xiang-Long Yu
Wenheng Xu
Zhongjing Xia
Dawei Zhou
Zilong Mao
Yan Lv
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering
Yijun Ming
Chao Liu
Ming Sheng
Kun Liu
Zhen Zhang
Chongqin Zhu
Xiaoyong Wang
School of Life Sciences
Chao Zhu
School of Materials Science and Engineering
Zhongfu An
State Key Laboratory of Flexible Electronics (LoFE) & Institute of Advanced Materials (IAM), School of Flexible Electronics (Future Technologies)
Lin Wang