论文著作:
35. Imidazole-functionalized covalent triazine frameworks for enhanced three-phase boundary construction in high-temperature proton exchange membrane fuel cells. International Journal of Hydrogen Energy, 2026. 231, 154822. (第一作者为2023级硕士生:谢锐)
34. Fluorine functionalized MIL-101 endows polymer electrolyte with highly Li+ dissociation, Li+ transference number and stabilized SEI for high-rate lithium metal batteries, Chemical Engineering Journal, 2026. 538, 176843. (第一作者为2023级硕士生:刘凯)
33. Highly porous single-ion conductor gel electrolyte derived from in-situ structural self-assembly for dendrite-free lithium metal batteries, Journal of Power Sources, 2025, 653(15), 237733. (第一作者为2023级硕士生:刘凯)
32. Lithium sulfonate-based polyether gel polymer electrolytes with high ionic conductivity and uniform Li-ion transport for high-performance lithium metal batteries, SCIENCE CHINA Materials, 2025, doi.org/10.1007/s40843-024-3220-5. (第一作者为2024级博士后:胡振原)
31. A spontaneous spatial network structural metal-organic framework composite polymer electrolytes with excellent lithium transport performance for dendrite-suppressing lithium metal batteries, Chemical Engineering Journal, 2025, 504, 158820. (第一作者为2023级博士生:刘子莹)
30. Surface modification strategies for an improved interfacial compatibility between LLZO and a polymer substrate for applications in high-performance solid-state Li-metal batteries, Journal of Power Sources, 2024, 592: 233969. (第一作者为2022级硕士生,2024级博士生:李胜寒)
29. Multifunctional single-ion conductor-integrated PEO-based solid polymer electrolytes endow highly stable and dendrite-free lithium metal batteries, Next Materials, 2024, 2: 100090. (第一作者为2021级博士生:胡振原)
28. Highly conductive and nonflammable boron-based gel type single ion conducting electrolyte membranes toward high-safety and dendrite-free lithium metal batteries, Journal of Energy Storage, 2024, 76: 109594. (第一作者为2020级硕士生:凡威震)
27. Single-ion conductors functionalized graphene oxide enabling solid polymer electrolytes with uniform Li-ion transport toward stable and dendrite-free lithium metal batteries, Chemical Engineering Journal, 2023, 144932. (第一作者为2021级博士生:胡振原)
26. Siloxane-type single-ion conductors enable composite solid polymer electrolyte membranes with fast Li+ transporting networks for dendrite-proof lithium-metal batteries, Chemical Engineering Journal, 2023, 468, 143857. (第一作者为2021级博士生:胡振原)
25. Highly conductive and mechanically robust single-ion conducting polymer electrolyte membranes with a high concentration of charge carriers for dendrite-proof lithium metal batteries, Journal of Membrane Science, 2023, 688, 122118. (第一作者为2020级硕士生:井肖)
24. A multifunctional polymeric additive with a synergistic effect for high-performance lithium-ion batteries, Chemical Communications, 2023, 59, 12, 1633-1636.
23. A Brush-like Li-Ion Exchange Polymer as Potential Artificial Solid Electrolyte Interphase for Dendrite-Free Lithium Metal Batteries. The Journal of Physical Chemistry Letters, 2023, 14: 16-23. (第一作者为2020级博士生:霍士康)
22. Flexible, high-temperature-resistant, highly conductive, and porous siloxane-based single-ion conducting electrolyte membranes for safe and dendrite-free lithium-metal batteries, Journal of Membrane Science, 2023, 668: 121275. (第一作者为2021级博士生:胡振原)
21. Imidazolium-Type Poly(ionic liquid) Endows the Composite Polymer Electrolyte Membrane with Excellent Interface Compatibility for All-Solid-State Lithium Metal Batteries. ACS Applied Materials & Interfaces, 2022, 14(50): 55664–55673. (第一作者为2020级硕士生:鲍伟)
20. Flexible, high-temperature-resistant, highly conductive, and porous siloxane-based single-ion conducting electrolyte membranes for safe and dendrite-free lithium-metal batteries, Journal of Membrane Science, 2023, 668: 121275. (第一作者为2021级博士生:胡振原)
19. Hydroxyl-rich single-ion conductors enable solid hybrid polymer electrolytes with excellent compatibility for dendrite-free lithium metal batteries. Journal of Membrane Science, 2022, 657: 120666. (第一作者为2021级博士生:胡振原)
18. In-situ construction of high-temperature-resistant 3D composite polymer electrolyte membranes towards high-performance all-solid-state lithium metal batteries, Journal of Power Sources, 2022, 548: 232052. (第一作者为2021级博士生:胡振原)
17. New insights into designation of single-ion conducting gel polymer electrolyte for high-performance lithium metal batteries, Journal of Membrane Science, 2022, 647(5): 120287 (第一作者为2020级博士生:霍士康)
16. Poly(ionic liquid)-functionalized graphene oxide towards ambient temperature operation of all-solid-state PEO-based polymer electrolyte lithium metal batteries, Chemical Engineering Journal, 2022, 437: 135420. (第一作者为2020级硕士生:鲍伟)
15. Enabling interfacial stability via 3D networking single ion conducting nano fiber electrolyte for high performance lithium metal batteries, Journal of Power Sources, 2021, 490(8), 229545. (第一作者为2018级硕士生:何阳)
14. Highly porous single ion conducting membrane via a facile combined “structural self-assembly”and in-situ polymerization process for high performance lithium metal batteries, Journal of Membrane Science, 2021, 636: 119601. (第一作者为2016级博士生:潘其云)
13. Effective suppressing lithium dendrite growth via an es-LiSPCE single ion conducting nano fiber membrane, Journal of Materials Chemistry A, 2020, 8(5): 2518-2528. (第一作者为2018级硕士生:何阳)
12. Lithiated polyanion supported Li1.5Al0.5Ge1.5(PO4)3 composite membrane as single-ion conducting electrolyte for security and stability advancement in lithium metal batteries, Journal of Membrane Science, 2020, 118926. (第一作者为2016级博士生:陈亚洲)
11. Single-ion Conducting Electrolyte based on Electrospun Nanofibers for High-performance Lithium Batteries, Advanced Energy Materials, 2019, 1803422 (内封面文章) (第一作者为2015级硕士生:李翠翠)
10. Highly porous single ion conducting polymer electrolyte for advanced lithium-ion batteries via facile water-induced phase separation process." Journal of Membrane Science, 2018, 568: 22-29. (第一作者为2015级硕士生:董佳明)
9. Highly porous single-ion conductive composite polymer electrolyte for high performance Li-ion batteries. Journal of Power Sources 2018, 397, 79-86.
8. Semi-Interpenetrating Polymer Networks toward Sulfonated Poly(ether ether ketone) Membrane for High Methanol Concentration Direct Methanol Fuel Cell, Chinese Chemical Letters, 2019, 30(2): 299-304.
7. Semi-interpenetrating Polymer Networks Membranes from SPEEK and BPPO for High Concentration DMFC, ACS Applied Energy Materials, 2018, 1, 5463-5473. (第一作者为2015级博士生:刘旭坡)
6. Enhanced performance of sulfonated poly (ether ether ketone) membranes by blending fully aromatic polyamide for practical application in direct methanol fuel cells (DMFCs), International Journal of Hydrogen Energy, 2017, 42(47): 28567-28577. (第一作者为2015级博士生:刘旭坡)
5. Superhydrophobic bromomethylated poly(phenylene oxide) as a multifunctional polymer filler in SPEEK membrane towards neat methanol operation of direct methanol fuel cells, Journal of Membrane Science, 2017, 544: 58-67. (第一作者为2015级博士生:刘旭坡)
4. Electrospun Multifunctional Sulfonated Carbon Nanofibers for Design and Fabrication of SPEEK Composite Proton Exchange Membranes for Direct Methanol Fuel Cell Application, International Journal of Hydrogen Energy, 2017, 42(15): 10275-10284. (第一作者为2015级博士生:刘旭坡)
3. A mechanically robust porous single ion conducting electrolyte membrane fabricated via self-assembly, Journal of Membrane Science, 2016, 507: 99-106. (第一作者为2014级硕士生:刘园)
2. Toward ambient temperature operation with all-solid-state lithium metalbatteries with a sp3 boron-based solid single ion conducting polymer electrolyte, Journal of Power Sources, 2016, 306: 152-161.
1. Influence of chemical microstructure of single ion polymeric electrolyte membranes on performance of lithium ion batteries, ACS Applied Materials & Interfaces, 2014, 6(20):17534- 42.