2009
DOI: 10.1016/j.jnoncrysol.2009.08.012
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Interfacial structure of oxidized inner pores in precursor-derived Si–C–N ceramics

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Cited by 3 publications
(2 citation statements)
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“…The HRTEM images reveal distinct lattice streaks, indicating the presence of ceramics and layered graphite. At the boundary, SiC (d = 0.252 nm), Si 3 N 4 (d = 0.266 nm), crystalline‐Si (d = 0.313 nm), and turbostratic graphite layers are observed as in Figure 9 A2–C2 58–60 . The glassy carbon reorganizes at approximately 2500°C, resulting in nanoscale, disordered, multilayered graphitic carbon structures 61 .…”
Section: Resultsmentioning
confidence: 99%
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“…The HRTEM images reveal distinct lattice streaks, indicating the presence of ceramics and layered graphite. At the boundary, SiC (d = 0.252 nm), Si 3 N 4 (d = 0.266 nm), crystalline‐Si (d = 0.313 nm), and turbostratic graphite layers are observed as in Figure 9 A2–C2 58–60 . The glassy carbon reorganizes at approximately 2500°C, resulting in nanoscale, disordered, multilayered graphitic carbon structures 61 .…”
Section: Resultsmentioning
confidence: 99%
“…At the boundary, SiC (d = 0.252 nm), Si 3 N 4 (d = 0.266 nm), crystalline-Si (d = 0.313 nm), and turbostratic graphite layers are observed as in Figure 9 A2-C2. [58][59][60] The glassy carbon reorganizes at approximately 2500 C, resulting in nanoscale, disordered, multilayered graphitic carbon structures. 61 The formation of layered graphite and ceramics in the carbon/ceramic network can effectively impede oxygen passage and increase resistance to heat flow scouring, providing strong thermal protection.…”
Section: Ablation Performance Of Psz-pr/ Cf Compositesmentioning
confidence: 99%