TY - JOUR
T1 - Computational Screening of Dopants for Gas Suppression and Thermoelastic Response in PCS-Derived SiC
AU - Zhang, Pengfei
AU - Shi, Junqin
AU - Fan, Xiaoli
AU - Zeng, Qingfeng
AU - Guan, Kang
N1 - Publisher Copyright:
© 2026 The American Ceramic Society.
PY - 2026/8
Y1 - 2026/8
N2 - H2/CH4 evolution during polycarbosilane (PCS) pyrolysis generates microdefects that impair densification, while dopant-induced changes in the derived SiC further affect its thermoelastic compatibility. Here, we develop a descriptor-based computational screening framework to evaluate dopants for simultaneous gas-suppression tendency in PCS and thermoelastic regulation of PCS-derived SiC ceramics. Both substitutional and non-substitutional doping scenarios were considered, and the latter was selected for systematic screening because it is considered more representative of practical precursor modification within the present descriptor-based screening framework. The screening identifies 13 promising dopants, among which B, Hf, Zr, Re, and Os exhibit strong radical-trapping capability and positive thermodynamic suppression of H2/CH4 formation. Molecular dynamics simulations further suggest dopant- and concentration-dependent changes in free volume, Young's modulus, Poisson's ratio, thermal expansion, and thermal-mismatch risk. Within the present computational framework, Ta-10% and Os-10% are predicted as priority candidates that offer favorable trade-offs between gas-suppression descriptors and thermoelastic compatibility, with Hf-10%, Zr-5%, and Re-3% emerging as secondary candidates for further validation.
AB - H2/CH4 evolution during polycarbosilane (PCS) pyrolysis generates microdefects that impair densification, while dopant-induced changes in the derived SiC further affect its thermoelastic compatibility. Here, we develop a descriptor-based computational screening framework to evaluate dopants for simultaneous gas-suppression tendency in PCS and thermoelastic regulation of PCS-derived SiC ceramics. Both substitutional and non-substitutional doping scenarios were considered, and the latter was selected for systematic screening because it is considered more representative of practical precursor modification within the present descriptor-based screening framework. The screening identifies 13 promising dopants, among which B, Hf, Zr, Re, and Os exhibit strong radical-trapping capability and positive thermodynamic suppression of H2/CH4 formation. Molecular dynamics simulations further suggest dopant- and concentration-dependent changes in free volume, Young's modulus, Poisson's ratio, thermal expansion, and thermal-mismatch risk. Within the present computational framework, Ta-10% and Os-10% are predicted as priority candidates that offer favorable trade-offs between gas-suppression descriptors and thermoelastic compatibility, with Hf-10%, Zr-5%, and Re-3% emerging as secondary candidates for further validation.
KW - dopant screening
KW - PCS-SiC conversion
KW - pyrolysis-gas suppression
KW - thermal-mismatch risk
KW - thermoelastic evolution
UR - https://www.scopus.com/pages/publications/105047521364
U2 - 10.1111/jace.71141
DO - 10.1111/jace.71141
M3 - 文章
AN - SCOPUS:105047521364
SN - 0002-7820
VL - 109
JO - Journal of the American Ceramic Society
JF - Journal of the American Ceramic Society
IS - 8
M1 - e71141
ER -