Fracture Behavior of a 2D Imine‐Based Polymer

Author:

Zhang Bowen12ORCID,Liu Xiaohui3,Bodesheim David4,Li Wei5,Clausner André1,Liu Jinxin3,Jost Birgit1,Dianat Arezoo4,Dong Renhao6,Feng Xinliang3,Cuniberti Gianaurelio47,Liao Zhongquan1ORCID,Zschech Ehrenfried2

Affiliation:

1. Fraunhofer Institute for Ceramic Technologies and System (IKTS) Maria‐Reiche‐Straße 2 01109 Dresden Germany

2. Faculty of Electrical and Computer Engineering Technical University of Dresden 01062 Dresden Germany

3. Faculty of Chemistry and Food Chemistry Technical University of Dresden 01062 Dresden Germany

4. Institute for Materials Science and Max Bergmann Center for Biomaterials Technical University of Dresden 01062 Dresden Germany

5. College of Chemistry and Chemical Engineering Lanzhou University Lanzhou 730000 P. R. China

6. Key Laboratory of Colloid and Interface Chemistry of the Ministry of Education School of Chemistry and Chemical Engineering Shandong University Jinan 250100 P. R. China

7. Dresden Center for Computational Materials Science (DCMS) Technical University of Dresden 01062 Dresden Germany

Abstract

Abstract2D polymers have emerged as a highly promising category of nanomaterials, owing to their exceptional properties. However, the understanding of their fracture behavior and failure mechanisms remains still limited, posing challenges to their durability in practical applications. This work presents an in‐depth study of the fracture kinetics of a 2D polyimine film, utilizing in situ tensile testing within a transmission electron microscope (TEM). Employing meticulously optimized transferring and patterning techniques, an elastic strain of ≈6.5% is achieved, corresponding to an elastic modulus of (8.6 ± 2.5) GPa of polycrystalline 2D polyimine thin films. In step‐by‐step fractures, multiple cracking events uncover the initiation and development of side crack near the main crack tip which toughens the 2D film. Simultaneously captured strain evolution through digital image correlation (DIC) analysis and observation on the crack edge confirm the occurrence of transgranular fracture patterns apart from intergranular fracture. A preferred cleavage orientation in transgranular fracture is attributed to the difference in directional flexibility along distinct orientations, which is substantiated by density functional‐based tight binding (DFTB) calculations. These findings construct a comprehensive understanding of intrinsic mechanical properties and fracture behavior of an imine‐linked polymer and provide insights and implications for the rational design of 2D polymers.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

China Scholarship Council

Publisher

Wiley

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