Effect of NaCl on synthesis of ZrB2 by a borothermal reduction reaction of ZrO2

Yu Wang , Yue-dong Wu , Ke-han Wu , Shu-qiang Jiao , Kuo-chih Chou , Guo-hua Zhang

International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (7) : 831 -838.

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International Journal of Minerals, Metallurgy, and Materials ›› 2019, Vol. 26 ›› Issue (7) : 831 -838. DOI: 10.1007/s12613-019-1794-9
Article

Effect of NaCl on synthesis of ZrB2 by a borothermal reduction reaction of ZrO2

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Abstract

ZrB2 powders were synthesized via a borothermal reduction reaction of ZrO2 with the assistance of NaCl under a flowing Ar atmosphere. The optimal temperature and reaction time were 1223 K and 3 h, respectively. Compared with the reactions conducted without the addition of NaCl, those performed with the addition of an appropriate amount of NaCl finished at substantially lower temperatures. However, the addition of too much NaCl suppressed this effect. With the assistance of NaCl, a special morphology of polyhedral ZrB2 particles covered with ZrB2 nanosheets was obtained. Moreover, the experimental results revealed that the special morphology was the result of the combined effects of B2O3 and NaCl. The formation of the special microstructure is explained on the basis of the “dissolution–recrystallization” mechanism.

Keywords

zirconium diboride / borothermal reduction / ultra-high temperature ceramics / dissolution–recrystallization mechanism

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Yu Wang, Yue-dong Wu, Ke-han Wu, Shu-qiang Jiao, Kuo-chih Chou, Guo-hua Zhang. Effect of NaCl on synthesis of ZrB2 by a borothermal reduction reaction of ZrO2. International Journal of Minerals, Metallurgy, and Materials, 2019, 26(7): 831-838 DOI:10.1007/s12613-019-1794-9

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References

[1]

Asl MS, Nayebi B, Ahmadi Z, Zamharir MJ, Shokouhimehr M. Effects of carbon additives on the properties of ZrB2-based composites: A review. Ceram. Int., 2018, 44, 7334.

[2]

Fahrenholtz WG, Hilmas GE, Talmy IG, Zaykoski JA. Refractory diborides of zirconium and hafnium. J. Am. Ceram. Soc., 2007, 90, 1347.

[3]

Monteverde F, Savino R, De Stefano Fumo M. Dynamic oxidation of ultra-high temperature ZrB2–SiC under high enthalpy supersonic flows. Corros. Sci., 2011, 53, 922.

[4]

Amirsardari Z, Aghdam RM, Salavati-Niasari M, Niasari S. Enhanced thermal resistance of GO/C/phenolic nanocomposite by introducing ZrB2 nanoparticles. Composites Part B, 2015, 76, 174.

[5]

Monteverde F, Bellosi A, Guicciardi S. Processing and properties of zirconium diboride-based composites. J. Eur. Ceram. Soc., 2002, 22, 279.

[6]

Guo SQ. Densification of ZrB2-based composites and their mechanical and physical properties: A review. J. Eur. Ceram. Soc., 2009, 29, 995.

[7]

Li RX, Lou HJ, Yin S, Zhang Y, Jiang YS, Zhao B, Li JP, Feng ZH, Satob T. Nanocarbon-dependent synthesis of ZrB2 in a binary ZrO2 and boron system. J. Alloys Compd., 2011, 509, 8581.

[8]

Ma L, Yu JC, Guo X, Zhang YS, Feng YR, Zong H, Zhang YJ, Gong HY. Effects of HBO2 on phase and morphology of ZrB2 powders synthesized by carbothermal reduction. Ceram. Int., 2017, 43, 12975.

[9]

Liu JH, Huang Z, Huo CG, Li FL, Zhang HJ, Zhang SW. Low-temperature rapid synthesis of rod-like ZrB2 powders by molten-salt and microwave co-assisted carbothermal reduction. J. Am. Ceram. Soc., 2016, 99, 2895.

[10]

Zhang SW, Khangkhamano M, Zhang HJ, Yeprem HA. Novel synthesis of ZrB2 powder via molten-salt-mediated magnesiothermic reduction. J. Am. Ceram. Soc., 2014, 97, 1686.

[11]

Zoli L, Galizia P, Silvestroni L, Sciti D. Synthesis of group IV and V metal diboride nanocrystals via borothermal reduction with sodium borohydride. J. Am Ceram. Soc., 2018, 101, 2627.

[12]

Jalaly M, Bafghi MS, Tamizifar M, Gotor FJ. An investigation on the formation mechanism of nano ZrB2, powder by a magnesiothermic reaction. J. Alloys Compd., 2018, 588, 36.

[13]

Bai LY, Jin HC, Lu C, Yuan FL, Huang SL, Li JL. RF thermal plasma-assisted metallothermic synthesis of ultrafine ZrB2 powders. Ceram. Int., 2015, 41, 7312.

[14]

Salavati-Niasari M, Dadkhah M, Davar F. Pure cubic ZrO2 nanoparticles by thermolysis of a new precursor. Polyhedron, 2009, 28, 3005.

[15]

Zinatloo-Ajabshir S, Salavati-Niasari M. Facile route to synthesize zirconium dioxide (ZrO2) nanostructures: Structural, optical and photocatalytic studies. J. Mol. Liq., 2016, 216, 545.

[16]

Zinatloo-Ajabshir S, Salavati-Niasari M. Synthesis of pure nanocrystalline ZrO2 via a simple sonochemical-assisted route. J. Ind. Eng. Chem., 2014, 20, 3313.

[17]

Zinatloo-Ajabshir S, Salavati-Niasari M, Zinatloo-Ajabshir Z. Nd2Zr2O7–Nd2O3 nanocomposites: New facile synthesis, characterization and investigation of photocatalytic behavior. Mater. Lett., 2016, 180, 27.

[18]

Bale CW, Bélisle E, Chartrand P, Decterov SA, Eriksson G, Hack K, Jung IH, Kang YB, Melançon J, Pelton AD, Robelin C, Petersen S. FactSage thermochemical software and databases — recent developments. Calphad, 2009, 33, 295.

[19]

Guo WM, Tan DW, Zhang ZL, Wu LX, Lin HT. Synthesis of fine ZrB2 powders by new borothermal reduction of coarse ZrO2 powders. Ceram. Int., 2016, 42, 15087.

[20]

Ran SL, Van der Biest O, Vleugels J. ZrB2 powders synthesis by borothermal reduction. J. Am. Ceram. Soc., 2010, 93, 1586.

[21]

Liu ZT, Wei YN, Meng X, Wei TT, Ran SL. Synthesis of CrB2 powders at 800°C under ambient pressure. Ceram. Int., 2017, 43, 1628.

[22]

Janz GJ. Molten salts data as reference standards for density, surface tension, viscosity, and electrical conductance: KNO3 and ^NaCl. J. Phys. Chem. Ref. Data, 2015, 9, 791.

[23]

Mackenzie JD. The viscosity, molar volume, and electric conductivity of liquid boron trioxide. Trans. Faraday Soc., 1956, 52, 1564.

[24]

Hu XL, Masuda Y, Ohji T, Kato K. Dissolution-recrystallization induced hierarchical structure in ZnO: Bunched roselike and core-shell-like particles. Cryst. Growth Des., 2010, 10, 626.

[25]

Beshkar F, Khojasteh H, Salavati-Niasari M. Flower-like CuO/ZnO hybrid hierarchical nanostructures grown on copper substrate: Glycothermal synthesis, characterization, hydrophobic and anticorrosion properties. Materials, 2017, 10, 697.

[26]

Ding ZH, Deng QH, Shi DW, Zhou XB, Li Y, Ran SL, Huang Q. Synthesis of hexagonal columnar ZrB2 powders through dissolution-recrystallization approach by microwave heating method. J. Am. Ceram. Soc., 2015, 97, 3037.

[27]

Wang YW, He JT, Liu CC, Chong WH, Chen HY. Thermodynamics versus kinetics in nanosynthesis. Angew. Chem. Int. Ed., 2015, 54, 2022.

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