第十四届先进陶瓷国际会议
Invited Speakers
S1.先进结构陶瓷和复合材料前沿:从日常使用到极端高温
S2.纳米层状碳化物/氮化物/硼化物及其二维材料
S3. 聚合物前驱体陶瓷
S4. 陶瓷基复合材料前沿
S5. 多孔陶瓷及其在能源与环境中的应用
S6.  先进耐火材料与传统陶瓷
S7.  透明陶瓷与发光材料
S8. 新型陶瓷涂层与技术
S9.  粉体工艺与烧结前沿
S10.3D 打印和增材制造进展
S11.  热电材料与器件
S12. 铁电与压电陶瓷
S13.  铁电与多铁薄膜
S14.  先进储能电介质材料
S15.  新兴光伏材料和器件
S16. 高熵陶瓷:极端环境下设计、加工和应用的创新
S16: High-Entropy Ceramics: Innovations in Design, Processing, and Applications for Extreme Environments

High-entropy ceramics, encompassing a diverse range of materials such as high-entropy oxides, carbides, borides, nitrides, silicides, carbonitrides, and borocarbonitrides, have emerged as a revolutionary class of materials with transformative potential in both structural and functional applications. These materials are characterized by their unique multi-component compositions, which impart exceptional mechanical, thermal, and functional properties, enabling them to thrive in extreme environments. For instance, high-entropy carbides and borides exhibit unparalleled hardness and oxidation resistance, making them ideal for cutting tools and thermal protection systems in aerospace applications, where temperatures can exceed 2,000°C. In energy storage, high-entropy oxides are being explored for their superior electrochemical performance in batteries and supercapacitors, offering enhanced stability and energy density. Meanwhile, high-entropy nitrides and carbonitrides are gaining attention for their exceptional wear resistance and thermal conductivity, making them suitable for advanced coatings and thermal management systems.
We are delighted to announce the Session on High-Entropy Ceramics: Innovations in Design, Processing, and Applications for Extreme Environments as part of the upcoming CICC-14 conference. This session will serve as a premier platform for researchers to showcase and discuss the latest advancements, challenges, and future directions in the field of high-entropy ceramics. It will delve into the design, modeling, processing, and applications of these materials, with a particular emphasis on their mechanical, thermal, and functional properties, applications in energy and environmental technologies, and transformative potential in aerospace, defense, and cutting-edge industries. technologies.

Session Scope & Themes
The core agenda of this session encompasses the following pivotal topics:
1.Design and Modeling of High-Entropy Ceramics
Novel design rules and computational modeling approaches for high-entropy ceramics, leveraging machine learning for high-throughput design and optimization to advance material discovery.
2.Advanced Processing Techniques
Advanced synthesis and processing techniques, address scalability and microstructure control through improved powder synthesis, sintering, and process optimization, overcoming phase segregation and density challenges to enhance high-entropy ceramics performance for extreme environments and advanced applications.
3.Mechanical, Thermal, and Functional Properties
Outstanding thermomechanical behavior, fracture toughness, wear resistance, and high-temperature stability for extreme environments, alongside unique electrical, magnetic, and optical properties, enabling multifunctional applications in advanced technologies.
4.High-Entropy Ceramics for Energy and Environmental Applications
Energy storage and conversion in batteries, supercapacitors, and fuel cells, providing thermal management through barrier coatings and insulation, and offering catalytic properties with environmental durability.
5.High-Entropy Ceramics in Aerospace, Defense, and Cutting-Edge Technologies
Ultra-high-temperature applications, mechanical performance enhancements, and extreme environment durability of high-entropy ceramics, leveraging oxidation resistance, thermal stability, and reliability to advance aerospace, defense, and nuclear technologies.
6.Future Directions, Challenges, and Industrial Adoption
Future directions in high-entropy ceramics focus on emerging compositional spaces, scalable synthesis, industrial integration, sustainability, advanced characterization, and collaborative innovation to address challenges in reliability, performance, and environmental impact while driving breakthroughs and commercialization across aerospace, energy, and defense sectors.

Organizers:
Yujin Wang, Harbin Institute of Technology, China
Yanchun Zhou, Zhengzhou University, China
Guo-Jun Zhang, Donghua University, China
W.G. Fahrenholtz, Missouri University of Science and Technology, USA
Jian Luo, University of California, San Diego, USA
Nita Dragoe, University Paris-Saclay, France
Hailong Wang, Zhengzhou University, China
Ji Zou, Wuhan University of Technology, Wuhan, China

Point of Contact:
Prof. Yujin Wang, Harbin Institute of Technology, wangyuj@hit.edu.cn
S17.  陶瓷材料纳米级表征
S18. 微波介电陶瓷及其应用
S19.  离子及混合传导陶瓷
S20.  生物陶瓷前沿
S21.数据驱动和人工智能在陶瓷和复合材料中的应用
S22. 用于传感器件的多功能纳米材料和异质结构
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