Ultra-fast high-temperature synthesis and densification of high-entropy diborides and diboride-carbide ceramics
暂无分享,去创建一个
[1] N. Obradović,et al. Multi-phase (Zr,Ti,Cr)B 2 solid solutions: Preparation, multi-scale microstructure, and local properties , 2023, Journal of Advanced Ceramics.
[2] S. Curtarolo,et al. Boro/carbothermal Reduction Co-synthesis of Dual-phase High-entropy Boride-carbide Ceramics , 2022, Journal of the European Ceramic Society.
[3] Liangbing Hu,et al. Rapid liquid phase–assisted ultrahigh-temperature sintering of high-entropy ceramic composites , 2022, Science advances.
[4] H. Gu,et al. Reactive sintering of dual-phase high-entropy ceramics with superior mechanical properties , 2022, Journal of Materials Science & Technology.
[5] G. Hilmas,et al. High‐Entropy Boride‐Carbide Ceramics by Sequential Boro/carbothermal Synthesis , 2022, Journal of the American Ceramic Society.
[6] P. Shen,et al. Ultrafast high-temperature synthesis and densification of high-entropy carbides , 2022, Journal of the European Ceramic Society.
[7] D. Sciti,et al. Design of ultra-high temperature ceramic nano-composites from multi-scale length microstructure approach , 2021, Composites Part B: Engineering.
[8] L. Hultman,et al. Review of transition-metal diboride thin films , 2021, Vacuum.
[9] P. Shen,et al. Ultrafast high-temperature sintering of bulk oxides , 2021 .
[10] S. Grasso,et al. Flash spark plasma sintering of pure TiB2 , 2021 .
[11] A. Mukasyan,et al. Extremely hard and tough high entropy nitride ceramics , 2020, Scientific Reports.
[12] F. Akhtar,et al. Effect of SiC on Microstructure, Phase Evolution, and Mechanical Properties of Spark-Plasma-Sintered High-Entropy Ceramic Composite , 2020, Ceramics.
[13] G. Hilmas,et al. Processing of dense high-entropy boride ceramics , 2020 .
[14] Weiming Guo,et al. Fine-grained dual-phase high-entropy ceramics derived from boro/carbothermal reduction , 2020, Journal of the European Ceramic Society.
[15] A. Mukhopadhyay,et al. Review on ultra-high temperature boride ceramics , 2020, Progress in Materials Science.
[16] Tyler J. Harrington,et al. Dual-phase high-entropy ultra-high temperature ceramics , 2020 .
[17] Guo‐Jun Zhang,et al. Mechanical properties of hot-pressed high-entropy diboride-based ceramics , 2020, Journal of Advanced Ceramics.
[18] B. Dunn,et al. A general method to synthesize and sinter bulk ceramics in seconds , 2020, Science.
[19] Tyler J. Harrington,et al. Dissolving and stabilizing soft WB2 and MoB2 phases into high-entropy borides via boron-metals reactive sintering to attain higher hardness , 2019, Journal of the European Ceramic Society.
[20] Guo‐Jun Zhang,et al. Preparation and characterization of diboride-based high entropy (Ti0.2Zr0.2Hf0.2Nb0.2Ta0.2)B2–SiC particulate composites , 2019 .
[21] Yanchun Zhou,et al. Porous high entropy (Zr0.2Hf0.2Ti0.2Nb0.2Ta0.2)B2: A novel strategy towards making ultrahigh temperature ceramics thermal insulating , 2019, Journal of Materials Science & Technology.
[22] J. Zou,et al. Dense and pure high-entropy metal diboride ceramics sintered from self-synthesized powders via boro/carbothermal reduction approach , 2019, Science China Materials.
[23] Shikuan Sun,et al. Dense high-entropy boride ceramics with ultra-high hardness , 2019, Scripta Materialia.
[24] Christina M. Rost,et al. Phase stability and mechanical properties of novel high entropy transition metal carbides , 2019, Acta Materialia.
[25] Houzheng Wu,et al. A high entropy silicide by reactive spark plasma sintering , 2019, Journal of Advanced Ceramics.
[26] S. Grasso,et al. Processing and Properties of High-Entropy Ultra-High Temperature Carbides , 2018, Scientific Reports.
[27] Tyler J. Harrington,et al. High-Entropy Metal Diborides: A New Class of High-Entropy Materials and a New Type of Ultrahigh Temperature Ceramics , 2016, Scientific Reports.
[28] C. Colinet,et al. Enthalpies of Formation of Transition Metal Diborides: A First Principles Study , 2015 .
[29] Jacob L. Jones,et al. Entropy-stabilized oxides , 2015, Nature Communications.
[30] Yanchun Zhou,et al. General Trends in Electronic Structure, Stability, Chemical Bonding and Mechanical Properties of Ultrahigh Temperature Ceramics TMB2 (TM = transition metal) , 2015 .
[31] Ye-hua Jiang,et al. First principles study the stability and mechanical properties of MC (M = Ti, V, Zr, Nb, Hf and Ta) compounds , 2014 .
[32] Ye-hua Jiang,et al. Elasticity, electronic properties and hardness of MoC investigated by first principles calculations , 2013 .
[33] A. Jankowiak,et al. Ultra High Temperature Ceramics : Densification, Properties and Thermal Stability. , 2011 .
[34] Yimin Gao,et al. The electronic, mechanical properties and theoretical hardness of chromium carbides by first-principles calculations , 2011 .
[35] Brent Fultz,et al. Vibrational thermodynamics of materials , 2010 .
[36] Guo‐Jun Zhang,et al. Reactive Hot Pressing of ZrB2–SiC Composites , 2004 .
[37] P. Becher,et al. Effect of oxygen contamination on densification of TiB2 , 1987 .
[38] Brian R. Lawn,et al. A Critical Evaluation of Indentation Techniques for Measuring Fracture Toughness: I , 1981 .
[39] Wei Zhang,et al. Fabrication of textured (Hf0.2Zr0.2Ta0.2Cr0.2Ti0.2)B2 high-entropy ceramics , 2021 .
[40] G. Hilmas,et al. Effect of Nb content on the phase composition, densification, microstructure, and mechanical properties of high-entropy boride ceramics , 2021 .
[41] D. Suh,et al. Stability of (Ti, M)C (M = Nb, V, Mo and W) carbide in steels using first-principles calculations , 2012 .