Abstract
The development of graphite composites for extreme environments is persistently hindered by inefficient reinforcement, primarily due to poor spatial control of ceramic-reinforcement phases and weak interfacial bonding. Herein, biomimetic cellular-structured bilayer Mo4.8Si3C0.6-SiC reinforced graphite microbead (MCMB@MSC-SiC) composites were fabricated via reactive spark plasma sintering (RSPS) of MoSi2 and MCMB. The synergistic strengthening and toughening were governed by sintering temperatures and ceramic components. The sample sintered at 1600 °C achieved near-full densification (99.5% relative density) with a continuous bilayer ceramic cytoderm comprising an outer MSC layer and an inner SiC transition layer. This structure formed via C diffusion-dominated reactions (MoSi2→Mo5Si3 + Sifree → MSC + SiC), with SiC growth driven by C diffusion at the MCMB/SiC interface. By coupling a three-dimensional continuous ceramic cytoderm with well-bonded phase interfaces, the composites yielded exceptional flexural strength (295 MPa) and fracture toughness (3.8 MPa m1/2) at optimized reinforcement content (21 vol% MSC and 26 vol% SiC). Key toughening mechanisms include interfacial crack deflection, graphite nanoflake bridging/pull-out, microcracking, bilayer-synergistic crack bridging/deflection, and suppressed debonding due to residual compressive stresses at the MCMB/SiC and MSC/SiC interfaces. This work establishes a paradigm of biomimetic bilayer design for developing high-performance graphite composites tailored for extreme environments.
| Original language | English |
|---|---|
| Article number | 121705 |
| Journal | Carbon |
| Volume | 257 |
| DOIs | |
| State | Published - Jul 2026 |
Keywords
- Biomimetic structure
- Component & structural evolution
- Graphite/ceramic composite
- Strengthening and toughening
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