ACS Applied Materials & Interfaces· 2026Q1
Interfacial Polytype Engineering of Polymer-Derived SiC via Compositionally Complex MXene Templating
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- Q1SCImago
- 2026year
Short summary
Introducing complex TiVCrMoC3 MXene nanosheets during preceramic processing directs silicon carbide (SiC) polytype evolution, yielding an ~82% increase in Young's modulus and ~42% improvement in fracture toughness at optimal MXene loading.
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Key points
- Complex TiVCrMoC3 MXene nanosheets were used as templates to influence SiC polytype evolution.
- MXene partially transformed into multicomponent carbide structures and derived layered regions during sintering.
- Heterogeneous interfacial configurations between MXene-derived phases and SiC were observed.
- Optimal MXene loading resulted in an ~82% increase in Young's modulus and ~42% improvement in fracture toughness.
AI-generated from the title and abstract; the full text is not read.
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.
The authors' abstract, as published at the source. ACS Applied Materials & Interfaces, 2026 · DOI ↗
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Field: Ceramics and Composites
Ceramics and CompositesMaterials Science