ABSTRACT SiBON ceramics exhibit excellent high‐temperature resistance, thermal shock resistance, and wave‐transparent properties, making them promising materials for radome materials under hypersonic flight conditions. In this study, a novel boronic acid‐modified polysilazoxane (RBOSZ) was synthesized via the polymer‐derived ceramics (PDC) route using cost‐effective starting materials, including trichlorosilane, tert‐butanol, boric acid, and ammonia. The polymer features a Si–N–Si backbone with tert‐butoxy side groups. After pyrolysis under nitrogen atmosphere, RBOSZ was converted into SiBON ceramics with a low residual carbon content of 0.65 wt% and a ceramic yield of 70.5 wt%. The introduction of boric acid increased the oxygen content of the precursor, promoting the formation of the Si 2 N 2 O phase at high temperatures. The RBOSZ‐derived ceramics exhibited remarkable thermal stability, retaining an amorphous structure up to 1400°C and forming Si 2 N 2 O nanocrystals after annealing at 1600°C. After treatment at 1700°C, the mass retention reached 81.2 wt%, significantly higher than that of the unmodified polysilazoxane (47.2 wt%). Furthermore, the ceramics demonstrated favorable wave‐transparent properties, with a dielectric constant (ε) of 3.5–4.0 and a loss tangent (tan δ) of 0.0029–0.0071 in the frequency range of 8–12 GHz.
Ren et al. (Fri,) studied this question.
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