Journal of Inorganic Materials, Volume. 39, Issue 6, 634(2024)
[2] UTSCHIG T, DESCHER P, RAUER M et al. Metal ceramic substrates for highly reliable power modules-not only in electric vehicles[J]. Interceram-International Ceramic Review, 69, 20(2020).
[4] YAMAGIWA M. Packaging technologies of power modules for hybrid electric vehicles and electric vehicles[J]. Bulletin of the Ceramic Society of Japan, 45, 432(2010).
[5] HAGGERTY J S, LIGHTFOOT A. Opportunities for enhancing the thermal conductivities of SiC and Si3N4 ceramics through improved processing[J]. Ceramic Engineering and Science Proceedings, 16: 475(1995).
[6] HIROSAKI N, OGATA S, KOCER C et al. Molecular dynamics calculation of the ideal thermal conductivity of single-crystal
[7] ZHOU H, FENG T. Theoretical upper limits of the thermal conductivity of Si3N4[J]. Applied Physics Letters, 122, 182203(2023).
[8] WATARI K, HIRAO K, BRITO M E et al. Hot isostatic pressing to increase thermal conductivity of Si3N4 ceramics[J]. Journal of Materials Research, 14, 1538(1999).
[11] ZHU X, ZHOU Y, HIRAO K et al. Potential use of only Yb2O3 in producing dense Si3N4 ceramics with high thermal conductivity by gas pressure sintering[J]. Science and Technology of Advanced Materials, 11, 065001(2010).
[12] KITAYAMA M, HIRAO K, WATARI K et al. Thermal conductivity of
[13] KITAYAMA M, HIRAO K, TORIYAMA M et al. Thermal conductivity of
[14] KITAYAMA M, HIRAO K, TSUGE A et al. Thermal conductivity of
[15] KITAYAMA M, HIRAO K, TSUGE A et al. Oxygen content in
[16] FU S, YANG Z C, LI J T. Progress of high strength and high thermal conductivity Si3N4 ceramics for power module packaging[J]. Journal of Inorganic Materials, 38, 1117(2023).
[17] ZHOU Y, HYUGA H, KUSANO D et al. Development of high-thermal-conductivity silicon nitride ceramics[J]. Journal of Asian Ceramic Societies, 3, 221(2015).
[18] ÇALIŞKAN F, TATLI Z, GENSON A et al. Pressureless sintering of
[19] HU F, ZHAO L, XIE Z. Silicon nitride ceramics with high thermal conductivity and excellent mechanical properties fabricated with MgF2 sintering aid and post-sintering heat treatment[J]. Journal of Ceramic Science and Technology, 7, 423(2016).
[20] LUO C, ZHANG Y, DENG T. Pressureless sintering of high performance silicon nitride ceramics at 1620 ℃[J]. Ceramics International, 47, 29371(2021).
[21] BAI B, FU T, NING X. Thermal conductivity and mechanical property of Si3N4 ceramics sintered with CeF3/LaF3 additives[J]. Advanced Materials Research, 105-106: 171(2010).
[22] LIAO S J, ZHOU L, JIANG C et al. Thermal conductivity and mechanical properties of Si3N4 ceramics with binary fluoride sintering additives[J]. Journal of the European Ceramic Society, 41, 6971(2021).
[23] HILLINGER G, HLAVACEK V. Direct synthesis and sintering of silicon nitridenitanium nitride composite[J]. Journal of the American Ceramic Society, 78, 495(1995).
[24] HAYASHI H, HIRAO K, TORIYAMA M et al. MgSiN2 addition as a means of increasing the thermal conductivity of
[25] PENG G, LIANG M, LIANG Z et al. Spark plasma sintered silicon nitride ceramics with high thermal conductivity using MgSiN2 as additives[J]. Journal of the American Ceramic Society, 92, 2122(2009).
[26] FU S, YANG Z C, LI H H et al. Mechanical properties and thermal conductivity of Si3N4 ceramics with composite sintering additives[J]. Journal of Inorganic Materials, 37, 947(2022).
[27] HU F, ZHU T, XIE Z et al. Effect of composite sintering additives containing non-oxide on mechanical, thermal and dielectric properties of silicon nitride ceramics substrate[J]. Ceramics International, 47, 13635(2021).
[28] ZHANG J, CUI W, LI F et al. Effects of MgSiN2 addition and post-annealing on mechanical and thermal properties of Si3N4 ceramics[J]. Ceramics International, 46, 15719(2020).
[31] LI Y, KIM H, WU H et al. Enhanced thermal conductivity in Si3N4 ceramic with the addition of Y2Si4N6C[J]. Journal of the American Ceramic Society, 101, 4128(2018).
[32] LIANG H, WANG W, ZUO K et al. Effect of LaB6 addition on mechanical properties and thermal conductivity of silicon nitride ceramics[J]. Ceramics International, 46, 17776(2020).
[33] BOYER S M, MOULSON A J. A mechanism for the nitridation of Fe-contaminated silicon[J]. Journal of Materials Science, 13, 1637(1978).
[34] MUKERJI J, BISWAS S K. Effect of iron, titanium, and hafnium on second-stage nitriding of silicon[J]. Journal of the American Ceramic Society, 64, 549(1981).
[35] WANG L, QI Q, CAI P et al. New route to improve the fracture toughness and flexural strength of Si3N4 ceramics by adding FeSi2[J]. Scripta Materialia, 126: 11(2017).
[36] WANG W D, YAO D, CHEN H et al. ZrSi2-MgO as novel additives for high thermal conductivity of
[37] SAJGALIK P, DUSZA J, HOFFMANN M J. Relationship between microstructure, toughening mechanisms, and fracture-toughness of reinforced silicon-nitride ceramics[J]. Journal of the American Ceramic Society, 78, 2619(1995).
[38] PARK H, KIM H E, NIIHARA K. Microstructural evolution and mechanical properties of Si3N4 with Yb2O3 as a sintering additive[J]. Journal of the American Ceramic Society, 80, 750(1997).
[39] WANG W D, YAO D, LIANG H Q et al. Effect of the binary nonoxide additives on the densification behavior and thermal conductivity of Si3N4 ceramics[J]. Journal of the American Ceramic Society, 103, 5891(2020).
[40] YAN M, LIU Y, LIU Y et al. Simultaneous gettering of oxygen and chlorine and homogenization of the
[41] HAMPSHIRE S. Oxynitride glasses[J]. Journal of the European Ceramic Society, 28, 1475(2008).
[42] LEMERCIER H, ROUXEL T, FARGEOT D et al. Yttrium SiAlON glasses: structure and mechanical properties-elasticity and viscosity[J]. Journal of Non-Crystalline Solids, 201, 128(1996).
[43] HAKEEM A S, DAUC R, LEONOVA E et al. Silicate glasses with unprecedented high nitrogen and electropositive metal contents obtained by using metals as precursors[J]. Advanced Materials, 17, 2214(2005).
[44] WANG W D, YAO D, LIANG H Q et al. Effect of
[45] WANG W D, CHEN H B, LI S H et al. Preparation of silicon nitride with high thermal conductivity and high flexural strength using YbH2-MgO as sintering additive[J]. Journal of Inorganic Materials, 36, 959(2021).
[46] WANG W D, YAO D, LIANG H et al. Improved thermal conductivity of
[47] WANG W D, YAO D, LIANG H et al. Enhanced thermal conductivity in Si3N4ceramics prepared by using ZrH2 as an oxygen getter[J]. Journal of Alloys and Compounds, 855: 157451(2021).
[48] DUAN Y, ZHANG J, LI X et al. High thermal conductivity silicon nitride ceramics prepared by pressureless sintering with ternary sintering additives[J]. International Journal of Applied Ceramic Technology, 16, 1399(2019).
[50] LUO H, LI C, DENG L et al. C0.3N0.7Ti-SiC toughed silicon nitride hybrids with non-oxide additives Ti3SiC2[J]. Materials, 13, 1428(2020).
[51] LEE B, LEE D, LEE J H. Enhancement of toughness and wear resistance in boron nitride nanoplatelet (BNNP) reinforced Si3N4 nanocomposites[J]. Scientific Reports, 6: 27609(2016).
[52] LIANG H, WANG W, ZUO K et al. YB2C2: a new additive for fabricating Si3N4 ceramics with superior mechanical properties and medium thermal conductivity[J]. Ceramics International, 46, 5239(2020).
[53] HUANG M, HUANG Y, OU J et al. Effect of a new nonoxide additive, Y3Si2C2, on the thermal conductivity and mechanical properties of Si3N4 ceramics[J]. International Journal of Applied Ceramic Technology, 19, 3403(2022).
[54] WATARI K, KAWAMOTO M, ISHIZAKI K. Carbon behavior in sintered silicon nitride grain boundaries[J]. Materials Science and Engineering A, 109: 89(1989).
[55] HNATKO M, SAJGALIK P, LENČÉŠ Z et al. Carbon reduction reaction in the Y2O3-SiO2 glass system at high temperature[J]. Journal of the European Ceramic Society, 21, 2797(2001).
[56] KIM H D, HAN B D, PARK D S et al. Novel two-step sintering process to obtain a bimodal microstructure in silicon nitride[J]. Journal of the American Ceramic Society, 85, 245(2002).
[57] LI Y, KIM H, WU H et al. Improved thermal conductivity of sintered reaction-bonded silicon nitride using a BN/graphite powder bed.[J]. Journal of the European Ceramic Society, 37, 4483(2017).
[58] LI Y, KIM H, WU H et al. Enhanced thermal conductivity in Si3N4 ceramic by addition of a small amount of carbon[J]. Journal of the European Ceramic Society, 39, 157(2019).
[59] LU D, YANG P, HUANG Y et al. Enhanced thermal conductivity in Si3N4 ceramics by carbonizing polydopamine coatings[J]. Ceramics International, 48, 18615(2022).
[61] LINDLEY M, PITMAN K, JONES B et al. The influence of hydrogen in the nitriding gas on the strength, structure and composition of reaction-sintered silicon nitride[J]. Journal of Materials Science, 14, 70(1979).
[62] WANG W D, YAO D, LIANG H et al. Novel silicothermic reduction method to obtain Si3N4 ceramics with enhanced thermal conductivity and fracture toughness[J]. Journal of the European Ceramic Society, 41, 1735(2021).
Get Citation
Copy Citation Text
Weiming WANG, Weide WANG, Yi SU, Qingsong MA, Dongxu YAO, Yuping ZENG.
Category:
Received: Nov. 14, 2023
Accepted: --
Published Online: Jul. 31, 2024
The Author Email: Weide WANG (nudtwwd@163.com), Yuping ZENG (yuping-zeng@mail.sic.ac.cn)