Issue 8, 2025

Wrap-around self-assembly of interspersed topological organic heterostructures based on multi-faceted alignment

Abstract

Organic low-dimensional heterostructures, with unique optoelectronic properties and flexible material design, provide new material foundations and technical means for optical interconnects and integrated optoelectronics. However, achieving precisely organized organic low-dimensional heterostructures is limited by homogeneous nucleation and interface energy mismatch between different molecules. A wrap-around self-assembly strategy is proposed, utilizing multi-faceted alignment to construct interspersed topological organic low-dimensional heterostructures. Interspersed topological heterostructures with precise spatial organization from bottom to top were successfully fabricated by controlling the sequential nucleation and growth of different crystals through stepwise solution self-assembly. Multi-faceted lattice matching promotes effective structural integration between one-dimensional (1D) microgranules and two-dimensional (2D) microsheets with the ultralow lattice mismatch rates η of 0.7% and 0.3%, respectively. Notably, the unique serial arrangement of microrods and microsheets enables photon coupling from 1D to 2D. The dimensional cross-guide coupling process facilitates optical interconnection, leading to more efficient optical signal transmission and processing, thereby enhancing the performance of optical interconnect technologies in information communication and optoelectronic devices.

Graphical abstract: Wrap-around self-assembly of interspersed topological organic heterostructures based on multi-faceted alignment

Supplementary files

Article information

Article type
Research Article
Submitted
16 Dec 2024
Accepted
28 Feb 2025
First published
05 Mar 2025

Mater. Chem. Front., 2025,9, 1259-1266

Wrap-around self-assembly of interspersed topological organic heterostructures based on multi-faceted alignment

J. Feng, Y. Wu, Z. Yao, C. Wang, S. Zhuo, H. Lin, S. Chen and X. Wang, Mater. Chem. Front., 2025, 9, 1259 DOI: 10.1039/D4QM01095G

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