论文著作:
[1] In-situ formed protective barrier enabled by sulfur@titanium carbide (MXene) ink for achieving high-capacity, long lifetime Li-S batteries. Advanced Science, 2018, 5(9): 1800502 (IF: 15.84)
[2] A robust, freestanding MXene-Sulfur conductive paper for long lifetime Li–S batteries. Advanced Functional Materials, 2019, 29(30): 1901907. (IF: 13.325)
[3] Flexible and conductive MXene films and nanocomposites with high capacitance. Proceedings of the National Academy of Sciences, 2014, 47, 16676-16681 (IF: 9.423)
[4] Stretchable Ti3C2Tx MXene/carbon nanotube composite based strain sensor with ultrahigh sensitivity and tunable sensing range. ACS Nano, 2018, 12: 56-62 (IF: 14.588)
[5] 2D MXene nanofilms with tunable gas transport channels. Advanced Functional Materials, 2018, 28(31): 1801511 (IF: 13.325)
Ultralight Ti3C2Tx MXene foam with superior microwave absorption performance. Chemical Engineering Journal, 2020, 408: 127283 (IF: 10.652)
[6] High-thermally conductive AlN-based microwave attenuating composite ceramics with spherical graphite as attenuating agent. Journal of Advanced Ceramics, 2021, 10(2): 301-319 (IF:16.9)
[7] In situ synthesis, mechanical properties, and oxidation resistance of (SiC+ZrB2)/Zr3[Al(Si)]4C6 composites, Corrosion Science, 2016,110(2): 182-191 (IF: 5.245)
[8] Preparation of mesoporous silica ceramics with relatively high strength from industrial wastes by low-toxic aqueous gel-casting. Journal of the European Ceramic Society, 2015, 35(7): 2163-2170 (IF: 3.454)
[9] Synergistically Enhanced Lithium Storage Performance Based on Titanium Carbide Nanosheets (MXene) Backbone and SnO2 Quantum Dots. Electrochimica Acta, 2018, 268: 503-511 (IF: 6.215)
[10] Synthesis of two-dimensional Ti3C2Tx MXene using HCl+LiF etchant: enhanced exfoliation and delamination. Journal of Alloys and Compounds, 2017, 695: 818-826 (IF: 4.175)
[11] Microstructure, mechanical, and thermal properties of (ZrB2+ZrC)/Zr3[Al(Si)]4C6 composite. Journal of the American Ceramic Society, 2014, 97(9): 2950-2956 (IF: 2.787)
[12] Ion-sieving Janus separator modified by Ti3C2Tx toward dendrite-free zinc-ion battery. Journal of Alloys and Compounds, 2023, 950: 169836 (IF: 6.2)
[13] Electrical conductivity, dielectric and microwave absorption properties of graphene nanosheets/magnesia composites. Journal of the European Ceramic Society, 2018, 38(4): 1639-1646 (IF: 4.495)
[14] LDH nanocrystal@amorphousness core–shell structure derived from LDH → LDO transformation: Synergistically enhanced energy stored for LIBs anode. Chemical Engineering Journal, 2024, 486: 150416 (IF: 13.3)
[15] Additive-Free Anode with High Stability: Nb2CTx MXene Prepared by HCl-LiF Hydrothermal Etching for Lithium-Ion Batteries. ACS Applied Materials & Interfaces, 2024, 16(22): 28709-28718 (IF: 8.3)
发明专利:
[1] 二维过渡族金属碳(氮)化物-纳米硅颗粒复合材料的制备及应用, 专利号:ZL201710661360.x
[2] 二维过渡族金属碳(氮)化物与纳米硫颗粒复合材料及其制备和应用, 专利号:ZL201610951729.6
[3] 一种致密铌铝硅碳固溶体材料及其制备方法, 专利号:ZL 201410225845.0
[4] 含镍、钴或铝的超薄花状水滑石材料的制备方法, 专利号:ZL 202210691195.3
[5] 用于氮化硅牙科陶瓷饰面瓷的堇青石微晶玻璃及制备方法, 专利号:ZL 202111250298.8
[6] 一种原位(TiB2+SiC)/Ti3SiC2复相陶瓷材料及其制备方法,专利号:ZL 201110024117.X
[7] 一种锆铝硅碳-硼化锆-碳化硅复合材料及其制备方法,专利号:ZL 201210260714.7
[8] 一种二维过渡族金属碳(氮)化物气凝胶及其制备方法和应用,专利号:ZL 201811600739.0
[9] 低毒凝胶体系注凝成型熔融石英陶瓷的方法,专利号:ZL 201210531925.X
[10] 一种氧化锆陶瓷的制备方法,专利号:ZL201010552565.2
[11] 一种致密氮化铝-氮化硼复合材料的制备方法,专利号:ZL 201510028830.X
[12] 一种无压烧结制备高纯六方氮化硼陶瓷的方法,专利号:ZL 201410422994.6
[13] 一种抗水化氮化铝粉体及其制备方法,专利号:ZL 201710373024.5
[14] 抗水解AlN粉末的制备方法, 专利号:ZL 200910029932.8