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Quantitative In-Situ Study of Strength-Governed Interfacial Failure between H-Bn and Polymer-Derived Ceramic

28 Pages Posted: 5 Oct 2020 Publication Status: Accepted

See all articles by Boyu Zhang

Boyu Zhang

Rice University - Department of Materials Science and NanoEngineering

Xing Liu

Brown University - School of Engineering

Hua Guo

Rice University - Department of Materials Science and NanoEngineering

Kaiqi Yang

Rice University - Department of Materials Science and NanoEngineering

Brian W. Sheldon

Brown University - School of Engineering

Huajian Gao

Brown University - School of Engineering

Jun Lou

Rice University - Department of Materials Science and NanoEngineering

Abstract

To quantitatively study the toughening behavior in two-dimensional (2D) material reinforced ceramics, pull-out experiments were conducted to investigate the properties of the interface between multi-layer h-BN nanosheet and polymer-derived ceramic (PDC). By using nanoindentation-assisted micro-mechanical devices integrated with scanning electron microscopy (SEM), the interfacial sliding and failure behaviors between h-BN and PDC were systematically studied. The failure process was monitored in situ with precise quantitative measurements of the relative displacements across the interface that were obtained with digital image correlation (DIC). An analytical cohesive shear-lag model was developed, and the interfacial modulus and strength of the h-BN/PDC interface were measured to be 5.65 ± 1 GPa·µm-1 and 66.4 ± 16.8 MPa, respectively. A micromechanical analysis shows that the interfacial failure in these materials is governed by the interfacial strength at small length scales, rather than the interfacial fracture energy.

Keywords: Interfacial properties, Nanomechanical test, 2D reinforced composites, Ceramic, h-BN

Suggested Citation

Zhang, Boyu and Liu, Xing and Guo, Hua and Yang, Kaiqi and Sheldon, Brian W. and Gao, Huajian and Lou, Jun, Quantitative In-Situ Study of Strength-Governed Interfacial Failure between H-Bn and Polymer-Derived Ceramic. Available at SSRN: https://ssrn.com/abstract=3683516 or http://dx.doi.org/10.2139/ssrn.3683516

Boyu Zhang

Rice University - Department of Materials Science and NanoEngineering

Xing Liu

Brown University - School of Engineering

Hua Guo

Rice University - Department of Materials Science and NanoEngineering

Kaiqi Yang

Rice University - Department of Materials Science and NanoEngineering

Brian W. Sheldon (Contact Author)

Brown University - School of Engineering ( email )

Box 1860
Providence, RI 02912
United States

Huajian Gao

Brown University - School of Engineering ( email )

Box 1860
Providence, RI 02912
United States

Jun Lou

Rice University - Department of Materials Science and NanoEngineering

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