科研团队
- 主要研究方向
- 代表性科研项目
- 代表性科研成果
- 专利
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1. 耐火材料的基础理论、绿色制备与应用研究;
2. 高温工业绿色高质量发展用新型耐火材料的研究与评价;
3. 新型二维层状材料的绿色制备与性能研究;
4. 新型量子点材料的制备与发光和抗氧化性能研究
5. 全固态薄膜锂电池的基础理论、制备及应用研究;
6. 热电池正极材料的制备及应用;
7. 锂离子电池的低温电解液的制备及性能研究
1. 国家科技支撑计划:高性能石英玻璃、微晶玻璃等特种材料关键技术研发与示范;
2. 国家科技支撑计划:水泥生产流程无铬化工艺关键技术与示范;
3. 科技部国际科技合作计划项目:高能量大功率固态锂离子动力电池研究;
4. 装备发展预先研究项目:XXXXXXXXXXXXX
5. 国家自然科学基金:细胞内活性氧可视监测与高效调节型零维MXenes的设计构建及其性能研究
6. 校企合作项目:大型高炉用新一代长寿型耐火材料的研制;
7. 校企合作项目:大型干法水泥窑用优质无铬碱性耐火材料的研制;
8. 校企合作项目:高风温长寿型热风炉新型耐火材料的开发;
9. 校企合作项目:“氮碳化硅材料”在炮泥中的应用研究;
10. 校企合作项目:高性能长寿命中间包用功能性耐火材料的开发;
11. 校企合作项目:国际高炉长寿高新技术的研究和使用(利用大数据分析研究高炉长寿的影响因素);
12. 校企合作项目:功能性耐火材料关键技术研究;
13. 校企合作项目:高炉陶瓷杯用钛基刚玉质系列产品的研制;
14. 校企合作项目:不烧(Al-Al2O3系)滑板和烧成铝碳滑板的性能优化;
15. 校级项目:金属卤化物钙钛矿发光材料的激发态调控与稳定性研究;
1. Yang S, Yong L, L B, et al. Reaction mechanisms between slag and Ti(C,N)–MgAl2O4 –Al2O3 refractories at 1600°C[J]. Ceramics International, 2020, 46(17):27774-82.
2. Ma C, Li Y, Zhang L, et al. Formation of (Al2OC)1-x(AlN)x solid solution starting from Al–Si–Al2O3 powder matrix at 1300°C in flowing nitrogen[J]. Journal of the American Ceramic Society, 2019, 102(10): 6349-56.
3. Haixia, Qin, Yong, et al. In-situ synthesis of AlON reinforcing phases in resin bonded Al2O3 composite materials[J]. Journal of Alloys & Compounds, 2017, 711:1-7.
4. Long M, Li Y, Qin H, et al. Formation mechanism of Si3N4 in reaction-bonded Si3N4-SiC composites[J]. Ceramics International, 2016, 42(15):16448-16452.
5. Hang Ye, Yong Li, Jialin Sun. Novel iron-rich mullite solid solution synthesis using fused-silica and α-Al2O3 powders [J]. Ceramics International, 2019, 45(4):4680-4684.
6. Yang S, Yong L, L B, et al. Formation mechanism of Ti(C, N) solid solution in Al-brown fused alumina refractory at 1973 K in flowing N2 [J]. Ceramics International, 2020, 46(3):2654-2660.
7. F. Pei, N. Li, Y. Chen, X. Niu, Y. Zhang, Z. Guo, Z. Huang, H. Zai, G. Liu, Y. Zhang, Y. Bai, X. Zhang, C. Zhu, Q. Chen, Y. Li*, and H. Zhou*. Thermal Management Enables More Efficient and Stable Perovskite Solar Cells, ACS Energy Letters, 2021, 6, 3029.
8. L. Wang, N. Zhang, Y. Li*, W. Kong, J. Gou, Y. Zhang, L. Wang, G. Yu, P. Zhang, H. Cheng, and L. Qu*. Mechanism of Nitrogen-Doped Ti3C2 Quantum Dots for Free-Radical Scavenging and the Ultrasensitive H2O2 Detection Performance, ACS Appl. Mater. Inter., 2021, 13, 42442.
9. L. Zhao, Z. Wang, Y. Li*. Designed synthesis of chlorine and nitrogen co-doped Ti3C2 MXene quantum dots and their outstanding hydroxyl radical scavenging properties, J. Mater. Sci. & Technol., 2021,78: 30-37.
10. L. Wang, Y. Li*, L. Zhao. Recent advances in ultrathin two-dimensional materials and biomedical applications for reactive oxygen species generation and scavenging, Nanoscale, 2020, 12(38):19516-19535.
11. L. Wang, Y. Li*, Y. Wang. Chlorine-Doped Graphene Quantum Dots with Enhanced Anti- and Pro-Oxidant Properties, ACS Appl. Mater. Inter., 2019, 11, 21822-21829.
12. L. Bai, et al. The surface behaviour of an Al-Li7La3Zr2O12 solid electrolyte. Ceramics International, 2017. 43(17): p. 15805-15810.
13. L. Bai, et al. The interfacial behaviours of all-solid-state lithium ion batteries. Ceramics International, 2018. 44(7): p. 7319-7328.
14. L. Bai, et al. A novel dense LiCoO2 microcrystalline buffer layer on a cathode-electrolyte interface for all-solid-state lithium batteries prepared by the magnetron sputtering method. Electrochimica Acta, 2019. 295: p. 677-683.
15. L. Bai, W. Xue, Y. Xue, et al. Interfacial ion transport mechanism of Li7(Al0.1)La3Zr2O12 solid electrolyte modified by spark plasma sintering method[J]. ChemElectroChem, 2018.
16. X. Wang, et al. Adiponitrile as Lithium-Ion Battery Electrolyte Additive: A Positive and Peculiar Effect on High-Voltage Systems. ACS Applied Energy Materials, 2018.
1. 一种高炉陶瓷杯用Al2OC-AlN固溶体结合刚玉耐火材料及制备方法.
2. 一种含碳氮化钛固溶体的电熔莫来石制备方法.
3. 一种钛增强刚玉系耐火材料及制备方法.
4. 一种(Al2OC)x(AlN)1-x固溶体结合MgO-C砖及其制备方法.
5. 一种氮化硅结合氮化硅铁材料的制备方法.
6. 高强度氮化硅铁窑具的制备方法.
7. 氮化硅铁多孔陶瓷滑板的制备方法.
8. 水泥窑过渡带用氮化硅铁-铝铬渣耐火材料及制备方法.
9. 水泥回转窑用赛隆结合镁铝尖晶石耐火材料及制备方法.
10. 基于MXene量子点的抗菌剂的制备及抗菌活性测试方法.
11. 一种MXene量子点荧光增强的方法.
12. 一种碱液刻蚀制备MXene量子点的方法.
13. 一种添加缓冲层的新型薄膜固态电解质的制备方法
14. 一种可用于中间包的高镁质覆盖剂材料及其制备方法
15. 一种可用于高温材料的Si-B-C-N材料及制备方法