Printable Block Molecular Assemblies with Controlled Exciton Dynamics

Author:

Li Zongshang1,Yang Jihyuk1,Sun Fengke2,Low Kam‐Hung1,Tian Wenming2,Jin Shengye2,Kim Ji Tae3,Che Chi‐Ming145,Wan Qingyun1ORCID

Affiliation:

1. Department of Chemistry State Key Laboratory of Synthetic Chemistry HKU‐CAS Joint Laboratory on New Materials The University of Hong Kong Pokfulam Road Hong Kong China

2. State Key Laboratory of Molecular Reaction Dynamics and Dynamics Research Center for Energy and Environmental Materials Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

3. Department of Mechanical Engineering The University of Hong Kong Pokfulam Road Hong Kong China

4. HKU Shenzhen Institute of Research & Innovation Shenzhen 518057 China

5. Hong Kong Quantum AI Lab Limited Units 909–915 Building 17W, 17 Science Park West Avenue, Pak Shek Kok Hong Kong China

Abstract

AbstractCreating hierarchical molecular block heterostructures, with the control over size, shape, optical, and electronic properties of each nanostructured building block can help develop functional applications, such as information storage, nanowire spectrometry, and photonic computing. However, achieving precise control over the position of molecular assemblies, and the dynamics of excitons in each block, remains a challenge. In the present work, the first fabrication of molecular heterostructures with the control of exciton dynamics in each block, is demonstrated. Additionally, these heterostructures are printable and can be precisely positioned using Direct Ink Writing‐based (DIW) 3D printing technique, resulting in programable patterns. Singlet excitons with emission lifetimes on nanosecond or microsecond timescales and triplet excitons with emission lifetimes on millisecond timescales appear simultaneously in different building blocks, with an efficient energy transfer process in the heterojunction. These organic materials also exhibit stimuli‐responsive emission by changing the power or wavelength of the excitation laser. Potential applications of these organic heterostructures in integrated photonics, where the versatility of fluorescence, phosphorescence, efficient energy transfer, printability, and stimulus sensitivity co‐exist in a single nanowire, are foreseen.

Funder

Research Grants Council, University Grants Committee

Science, Technology and Innovation Commission of Shenzhen Municipality

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

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