Correlating Young's Modulus with High Thermal Conductivity in Organic Conjugated Small Molecules

Author:

Zeng Jianhui12ORCID,Liang Ting3ORCID,Zhang Jingjing24,Liu Daoqing2,Li Shiang5ORCID,Lu Xinhui5ORCID,Han Meng2ORCID,Yao Yimin2ORCID,Xu Jian‐Bin3ORCID,Sun Rong2ORCID,Li Liejun1

Affiliation:

1. Guangdong Key Laboratory for Processing and Forming of Advanced Metallic Materials School of Mechanical & Automotive Engineering South China University of Technology 381 Wushan Guangzhou 510640 China

2. National Key Laboratory of Materials for Integrated Circuits Shenzhen Institute of Advanced Electronic Materials Shenzhen Institute of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 China

3. Department of Electronics Engineering The Chinese University of Hong Kong Hong Kong China

4. Nano Science and Technology Institute University of Science and Technology of China No. 166 Renai Road Suzhou 215000 China

5. Department of Physics The Chinese University of Hong Kong Hong Kong 999077 China

Abstract

AbstractAttaining elevated thermal conductivity in organic materials stands as a coveted objective, particularly within electronic packaging, thermal interface materials, and organic matrix heat exchangers. These applications have reignited interest in researching thermally conductive organic materials. The understanding of thermal transport mechanisms in these organic materials is currently constrained. This study concentrates on N, N'‐dioctyl‐3,4,9,10‐perylenedicarboximide (PTCDI‐C8), an organic conjugated crystal. A correlation between elevated thermal conductivity and augmented Young's modulus is substantiated through meticulous experimentation. Achievement via employing the physical vapor transport method, capitalizing on the robust C═C covalent linkages running through the organic matrix chain, bolstered by π–π stacking and noncovalent affiliations that intertwine the chains. The coexistence of these dynamic interactions, alongside the perpendicular alignment of PTCDI‐C8 molecules, is confirmed through structural analysis. PTCDI‐C8 thin film exhibits an out‐of‐plane thermal conductivity of 3.1 ± 0.1 W m−1 K−1, as determined by time‐domain thermoreflectance. This outpaces conventional organic materials by an order of magnitude. Nanoindentation tests and molecular dynamics simulations elucidate how molecular orientation and intermolecular forces within PTCDI‐C8 molecules drive the film's high Young's modulus, contributing to its elevated thermal conductivity. This study's progress offers theoretical guidance for designing high thermal conductivity organic materials, expanding their applications and performance potential.

Funder

National Natural Science Foundation of China

Shenzhen Science and Technology Innovation Program

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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