Ultrafine ZrB<sub>2</sub> Ceramic Powders Prepared by a Sol–Gel Method Synergized with a Carbothermic Reaction and Their Improved Sintering Performance
Ультратонкие керамические порошки ZrB2, полученные методом золь‑гел, синергизированным с карботермической реакцией, и их улучшенная спекательная способность
2023-02-02
SCID: 54.1/ktywfgt6
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ZrB2 ceramic powderscarbothermic reactionsintering performancesol–gel methodsorbitol (C6H14O6)
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Abstract (AI)
The sol–gel method synergized with a carbothermic reaction has been known to be one of the most promising strategies for preparing a high-quality boride and carbon-based ultrahigh-temperature ceramic, yet their growth mechanism remains underexplored. Herein, high-purity ZrB 2 ceramic powders are prepared by a sol–gel method synergized with a subsequent carbothermic reaction. Specifically, sorbitol (C 6 H 14 O 6 ) is adopted to build molecularly disperse networks of Zr–O–C–B. Structural characterizations reveal that the calcination temperature and duration have a great influence on the phase and morphological transformation of the precursor. The ZrB 2 seeds start to be generated near ZrO 2 particles around 1100 °C and grow from the surface to the core of ZrO 2 particles with heat and mass transportation around ZrO 2 driven by B 2 O 3 at high temperature. Additionally, the ZrB 2 powders could research a hardness of 22.5 GPa and a bending strength of 540 MPa after sintering, showing improved mechanical properties. This work reveals the growth mechanism of ultrafine and high-purity ZrB 2 powders by a sol–gel method and a carbothermic reaction, which can be used as raw materials to obtain ZrB 2 ultrahigh-temperature ceramics with improved mechanical properties.
Key Findings
1
Calcination temperature and duration strongly influence precursor phase and morphological transformations during ZrB2 formation.
2
High-purity ultrafine ZrB2 ceramic powders were prepared using a sol–gel method combined with a subsequent carbothermic reaction, with sorbitol creating molecularly dispersed Zr–O–C–B networks.
3
Sintered ZrB2 powders achieved a hardness of 22.5 GPa and a bending strength of 540 MPa, indicating improved mechanical properties.
4
The revealed growth mechanism explains how sol–gel plus carbothermal processing yields ultrafine, high-purity ZrB2 powders suitable as raw materials for improved ultrahigh-temperature ceramics.
5
ZrB2 seeds begin forming near ZrO2 particles around 1100 °C and grow from the surface toward the core of ZrO2 via heat and mass transport driven by B2O3 at high temperature.
Research Object
Ultrafine high-purity ZrB2 ceramic powders produced by a sol–gel method combined with a carbothermic reaction
Research Subject
Growth mechanism, phase and morphological transformation during calcination, and resulting sintering performance and mechanical properties (hardness, bending strength) of the ZrB2 powders
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2023-02-02
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References available in scid.ai3
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Wide-Band Tunable Microwave-Absorbing Ceramic Composites Made of Polymer-Derived SiOC Ceramic and in Situ Partially Surface-Oxidized Ultra-High-Temperature Ceramics2019
Fabrication of High‐Strength Continuous Zirconia Fibers and Their Formation Mechanism Study2004