Interfacial Polytype Engineering of Polymer-Derived SiC via Compositionally Complex MXene Templating

Controlling polytype selection in polymer-derived silicon carbide (SiC) remains challenging since stacking sequences are determined locally at the nucleation front. Here, we investigate an interface-based strategy for influencing SiC polytype evolution by introducing compositionally complex TiVCrMoC3 MXene nanosheets at the preceramic stage. Under spark plasma sintering (1900 °C, 70 MPa), which typically stabilizes cubic 3C-SiC (β-SiC), the MXene partially transforms into multicomponent (Ti,V,Cr,Mo)Cx carbide structures, while MXene-derived layered regions are also locally observed. Local HRTEM observations show reconstructed carbide/SiC interfaces adjacent to 6H-SiC regions and MXene-derived layered phase/SiC interfaces adjacent to 3C-SiC regions, revealing heterogeneous interfacial configurations within the SiC matrix. Mechanical testing further reveals peak performance at an optimal MXene loading where interfacial reconstruction is most pronounced, with an ∼82% increase in Young's modulus and ∼42% improvement in fracture toughness. These findings highlight interfacial polytype engineering via two-dimensional carbide templates as a promising route for directing crystal structure evolution in polymer-derived ceramics.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-10-06
DOI
https://doi.org/10.1021/acsami.6c06733
Primary Topic
Advanced ceramic materials synthesis
Type
article
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article

Interfacial Polytype Engineering of Polymer-Derived SiC via Compositionally Complex MXene Templating

Jeremy Watts, Mohammad Naraghi, Kelvin Y. Xie, Congjie Wei et al.
ACS Applied Materials & Interfaces
Advanced ceramic materials synthesis
article

Interfacial Polytype Engineering of Polymer-Derived SiC via Compositionally Complex MXene Templating

Jeremy Watts, Mohammad Naraghi, Kelvin Y. Xie, Congjie Wei, Yuxiang Gan, Laxmi Sai Viswanadha, Jianyu Dai, Chenglin Wu
article en

Abstract

Controlling polytype selection in polymer-derived silicon carbide (SiC) remains challenging since stacking sequences are determined locally at the nucleation front. Here, we investigate an interface-based strategy for influencing SiC polytype evolution by introducing compositionally complex TiVCrMoC3 MXene nanosheets at the preceramic stage. Under spark plasma sintering (1900 °C, 70 MPa), which typically stabilizes cubic 3C-SiC (β-SiC), the MXene partially transforms into multicomponent (Ti,V,Cr,Mo)Cx carbide structures, while MXene-derived layered regions are also locally observed. Local HRTEM observations show reconstructed carbide/SiC interfaces adjacent to 6H-SiC regions and MXene-derived layered phase/SiC interfaces adjacent to 3C-SiC regions, revealing heterogeneous interfacial configurations within the SiC matrix. Mechanical testing further reveals peak performance at an optimal MXene loading where interfacial reconstruction is most pronounced, with an ∼82% increase in Young's modulus and ∼42% improvement in fracture toughness. These findings highlight interfacial polytype engineering via two-dimensional carbide templates as a promising route for directing crystal structure evolution in polymer-derived ceramics.

ACS Applied Materials & Interfaces
Missouri University of Science and Technology (US), Texas A&M University (US)
Openalex Percentile: Top 85%
Advanced ceramic materials synthesis
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Interfacial Polytype Engineering of Polymer-Derived SiC via Compositionally Complex MXene Templating — Jeremy Watts, Mohammad Naraghi, et al. · ACS Applied Materials & Interfaces (2026) | TGRS Research Map | TGRS