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Research Article | Open Access

Structural evolution and high-temperature sensing performance of polymer-derived SiAlBCN ceramics

Chao Ma1,2,Kun Liu1,Pengfei Shao1Daoyang Han1Kang Wang1Mengmeng Yang1Rui Zhao1Hailong Wang1Rui Zhang1Gang Shao1,3( )
School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450001, China
Zhongyuan Critical Metal Laboratory, Zhengzhou University, Zhengzhou 450001, China
State Key Laboratory of Structural Analysis, Optimization and CAE Software for Industrial Equipment, Zhengzhou University, Zhengzhou 450002, China

Chao Ma and Kun Liu contributed equally to this work.

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Abstract

In situ temperature monitoring has become extremely imperative in high-temperature harsh environments and polymer-derived ceramics (PDCs) as sensing materials have attracted great attention. However, the stability and oxidation/corrosion resistance of PDCs cannot be simultaneously achieved at the moment, limiting their practical application. Herein, polymer-derived SiAlBCN ceramics were synthesized via polymer conversion method under different pyrolysis temperatures. Their microstructure evolution, high temperature sensing properties, and stability were investigated in detail. The results show that the amorphous SiAlBCN phase grows more orderly and the size of the free carbon phase enlarges with the increasing temperature. The defect concentration displays a decreasing tendency. Concurrently, the SiAlBCN ceramics as sensing materials exhibit a good temperature–resistance property from roo temperature to 1100 . The fabricated SiAlBCN temperature sensor possesses excellent stability, repeatability, and accuracy. Moreover, SiAlBCN ceramics exhibit distinguished oxidation/corrosion resistance after 100 h treatment at 1200 in a water/oxygen environment, which is attributed to their low corrosive rate constant (0.57 mg/(cm2·h)) and oxidative rate constant (3.43 mg2/(cm4·h)). Therefore, polymer-derived SiAlBCN ceramics as sensing materials, which possess outstanding stability and oxidation/corrosion resistance, have great potential for in-situ monitoring of extreme environmental temperatures in the future.

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References

[1]

Pollock TM. Alloy design for aircraft engines. Nat Mater 2016, 15: 809–815.

[2]

Lemberg JA, Ritchie RO. Mo–Si–B alloys for ultrahigh-temperature structural applications. Adv Mater 2012, 24: 3445–3480.

[3]

Jiang DQ, Zhang DL, Li XY, et al. Fluoride-salt-cooled high-temperature reactors: Review of historical milestones, research status, challenges, and outlook. Renew Sust Energ Rev 2022, 161: 112345.

[4]

Casady JB, Dillard WC, Johnson RW, et al. A hybrid 6H-SiC temperature sensor operational from 25 ℃ to 500 ℃. IEEE Trans Compon Packag Manuf Technol Part A 1996, 19: 416–422.

[5]

Feteira A. Negative temperature coefficient resistance (NTCR) ceramic thermistors: An industrial perspective. J Am Ceram Soc 2009, 92: 967–983.

[6]

Sahoo S, Parashar SKS, Ali SM. CaTiO3 nano ceramic for NTCR thermistor based sensor application. J Adv Ceram 2014, 3: 117–124.

[7]

Chaudhary RP, Parameswaran C, Idrees M, et al. Additive manufacturing of polymer-derived ceramics: Materials, technologies, properties and potential applications. Prog Mater Sci 2022, 128: 100969.

[8]

Wen QB, Yu ZJ, Riedel R. The fate and role of in situ formed carbon in polymer-derived ceramics. Prog Mater Sci 2020, 109: 100623.

[9]

Zhao R, Shao G, Cao YJ, et al. Temperature sensor made of polymer-derived ceramics for high-temperature applications. Sens Actuat A Phys 2014, 219: 58–64.

[10]

Wen QB, Qu FM, Yu ZJ, et al. Si-based polymer-derived ceramics for energy conversion and storage. J Adv Ceram 2022, 11: 197–246.

[11]

Colombo P, Mera G, Riedel R, et al. Polymer-derived ceramics: 40 years of research and innovation in advanced ceramics. J Am Ceram Soc 2010, 93: 1805–1837.

[12]

Wang YG, Fan Y, Zhang LG, et al. Polymer-derived SiAlCN ceramics resist oxidation at 1400 ℃. Scripta Mater 2006, 55: 295–297.

[13]

Riedel R, Ruswisch LM, An LN, et al. Amorphous silicoboron carbonitride ceramic with very high viscosity at temperatures above 1500 ℃. J Am Ceram Soc 1998, 81: 3341–3344.

[14]

Yu ZJ, Chen T, Du HZ, et al. Single-source-precursor derived SiOC ceramics with in-situ formed CNTs and core–shell structured CoSi@C nanoparticles towards excellent electromagnetic wave absorption properties. J Adv Ceram 2023, 12: 1119–1135.

[15]

Cui ZF, Li X, Chen GC, et al. Thin-film temperature sensor made from particle-filled polymer-derived ceramics pyrolyzed in vacuum. J Eur Ceram Soc 2022, 42: 2735–2742.

[16]

Wu C, Pan XC, Lin F, et al. High-temperature electrical properties of polymer-derived ceramic SiBCN thin films fabricated by direct writing. Ceram Int 2022, 48: 15293–15302.

[17]

Shao PF, Ma C, Han DY, et al. Temperature-sensing performance of polymer-derived SiAlCN ceramics up to 1000 ℃. Ceram Int 2022, 48: 25277–25283.

[18]

Wu C, Lin F, Pan XC, et al. TiB2-modified polymer-derived ceramic SiCN double-layer thin films fabricated by direct writing for high-temperature application. Adv Eng Mater 2022, 24: 2200228.

[19]

Chen ZW, Su D, Zhu WX, et al. A superelastic SiOC@carbon ceramic spring for multifunctional pressure sensor in wide temperature range. Chem Eng J 2023, 468: 143635.

[20]

Yu YD, Li JP, Niu JH, et al. The stability and repeatability of high temperature electrical properties of SiAlCN ceramic sensor heads. Ceram Int 2019, 45: 7588–7593.

[21]

Shao G, Jiang JP, Jiang MJ, et al. Polymer-derived SiBCN ceramic pressure sensor with excellent sensing performance. J Adv Ceram 2020, 9: 374–379.

[22]

Li N, Cao YJ, Zhao R, et al. Polymer-derived SiAlOC ceramic pressure sensor with potential for high-temperature application. Sens Actuat A Phys 2017, 263: 174–178.

[23]

Xu DZ, Zheng C, Wei C, et al. Effect of low activation rare-earth oxides on sintering of β-SiC. J Eur Ceram Soc 2022, 42: 6802–6814.

[24]

Wang BJ, Song YJ, Zhang X, et al. Polymer derived SiBCN(O) ceramics with tunable element content. Ceram Int 2022, 48: 10280–10287.

[25]

Yan Q, Chen SY, Shi HF, et al. Fabrication of polymer-derived SiBCN ceramic temperature sensor with excellent sensing performance. J Eur Ceram Soc 2023, 43: 7373–7380.

[26]

Ma C, Shao G, Jiang JP, et al. Temperature dependent AC electric conduction of polymer-derived SiAlCN ceramics. Ceram Int 2018, 44: 8461–8466.

[27]

Traßl S, Suttor D, Motz G, et al. Structural characterisation of silicon carbonitride ceramics derived from polymeric precursors. J Eur Ceram Soc 2000, 20: 215–225.

[28]

Widgeon SJ, Sen S, Mera G, et al. 29Si and 13C solid-state NMR spectroscopic study of nanometer-scale structure and mass fractal characteristics of amorphous polymer derived silicon oxycarbide ceramics. Chem Mater 2010, 22: 6221–6228.

[29]

Hanniet Q, Boussmen M, Barés J, et al. Investigation of polymer-derived Si–(B)–C–N ceramic/reduced graphene oxide composite systems as active catalysts towards the hydrogen evolution reaction. Sci Rep 2020, 10: 22003.

[30]

Tang HQ, Wang KW, Ren K, et al. Microstructural evolution and microwave transmission/absorption transition in polymer-derived SiOC ceramics. Ceram Int 2023, 49: 20406–20418.

[31]

Chen QQ, Li DX, Liao XQ, et al. Polymer-derived lightweight SiBCN ceramic nanofibers with high microwave absorption performance. ACS Appl Mater Interfaces 2021, 13: 34889–34898.

[32]

Tang ZC, Wang SF, Tusiime R, et al. Synthesis of SiBNC-Al ceramics with different aluminum contents via polymer-derived method. J Am Ceram Soc 2022, 105: 2914–2924.

[33]

Berger F, Weinmann M, Aldinger F, et al. Solid-state NMR studies of the preparation of Si–Al–C–N ceramics from aluminum-modified polysilazanes and polysilylcarbodiimides. Chem Mater 2004, 16: 919–929.

[34]

Wang KW, Ma BS, Li XQ, et al. Structural evolutions in polymer-derived carbon-rich amorphous silicon carbide. J Phys Chem A 2015, 119: 552–558.

[35]

Opila EJ, Jacobson NS. SiO(g) formation from SiC in mixed oxidizing-reducing gases. Oxid Met 1995, 44: 527–544.

[36]

Ramberg CE, Worrell WL. Oxygen transport in silica at high temperatures: Implications of oxidation kinetics. J Am Ceram Soc 2001, 84: 2607–2616.

[37]

Opila EJ, Hann RE Jr. Paralinear oxidation of CVD SiC in water vapor. J Am Ceram Soc 1997, 80: 197–205.

[38]

Fox DS, Opila EJ, Nguyen QN, et al. Paralinear oxidation of silicon nitride in a water−vapor/oxygen environment. J Am Ceram Soc 2003, 86: 1256–1261.

[39]

Wang YG, Fei WF, An LN. Oxidation/corrosion of polymer-derived SiAlCN ceramics in water vapor. J Am Ceram Soc 2006, 89: 1079–1082.

Journal of Advanced Ceramics
Pages 478-485
Cite this article:
Ma C, Liu K, Shao P, et al. Structural evolution and high-temperature sensing performance of polymer-derived SiAlBCN ceramics. Journal of Advanced Ceramics, 2024, 13(4): 478-485. https://doi.org/10.26599/JAC.2024.9220870

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Received: 05 January 2024
Revised: 01 February 2024
Accepted: 24 February 2024
Published: 30 April 2024
© The Author(s) 2024.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, http://creativecommons.org/licenses/by/4.0/).

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