邮箱:fwu@iphy.ac.cn
办公地点:长江大学(东校区)物理与光电工程学院10号教学楼
个人简介:
吴凡,男,1989年12月生,国家级高层次人才计划、中国科学院杰出人才计划入选者,长江大学物理与光电工程学院教授、博士研究生指导教师。曾任共青团常州市委副书记、中国科学院物理所博导、中国科学院大学教授、长三角物理研究中心科学家工作室主任、天目湖先进储能技术研究院首席科学家等职。
教育/工作经历:
2026.08-至今 长江大学物理与光电工程学院,教授、博士研究生导师。
2019-2026.07 团常州市委副书记;中科院物理所博导;中国科学院大学教授;长三角物理研究中心科学家工作室主任;天目湖先进储能技术研究院首席科学家。
2016-2018 哈佛大学(美国),博士后、Research Scientist。
2014-2016 普林斯顿大学(美国),博士后。
2011-2014 北卡罗莱纳州立大学(美国),材料科学与工程,硕士+博士。
2007-2011 浙江大学,材料科学与工程,学士。
主要研究方向:
(1)高能量密度锂(离子)电池材料、电芯研发;
(2)硫化物全固态/固态锂(离子)电池材料、电芯研发;
(3)正负极材料与固态电解质界面处理;
(4)锂电池失效分析;
(5)先进材料表征与分析。
主要奖项及荣誉:
国家级高层次人才计划(2019);
中国科学院杰出人才计划(2019)及择优支持(2021);
全国青年岗位能手-共青团中央(2022);
第一届全国先进储能技术创新挑战赛二等奖-国家工信部(2022);
全国未来储能技术挑战赛一等奖(2021);
中国科学院物理研究所"科技新人奖"(2021);
江苏省杰出青年基金(2022);
江苏青年五四奖章(2022);
江苏青年U35攀峰奖(2022);
江苏青年双创英才(2021);
常州市五一劳动奖章(2022);
常州市十大杰出青年(2022);
常州市突出贡献人才(2021);
常州市十大科技新锐(2021);
常州市领军型创新人才(2021);
最美常州人(2021);
常州好青年(2021);
常州市五大明星城建设先进个人(2021);
年度新能源领域最受关注研究工作(2021);
溧阳市优秀共产党员(2021);
天目湖英才榜C类人才(2020);
首届天目湖英才榜探索英才(2022);
溧阳市十大青春追梦人(2019);
华为优秀创新人才奖(2021);
华为创新探索团队奖(2021);
研究项目:
国家级高层次人才引进计划研究项目1项,项目负责人
中科院“海外杰出人才引进计划”研究项目及择优支持1项,项目负责人
国家自然科学基金面上项目 1项,项目负责人
江苏省杰出青年基金项目1项,项目负责人
江苏省重点研发计划重点项目 1项,项目负责人
北京市自然科学基金面上项目 1项,项目负责人
天目湖先进储能技术研究院科学家工作室研究项目1项,项目负责人
华为前瞻性战略研发项目 2项,首席科学家
中国长江三峡集团前瞻性战略研发项目 1项,首席科学家
国家自然科学基金重点研发项目1项,课题负责人
代表性论文:
发表SCI论文100余篇 ,包括Nature Energy 1篇, Nature Communications 2篇, Joule1篇,Energy & Environmental Science 3篇, Progress in Materials Science 2篇, Materials today 1篇, Advanced Materials 6篇, Advanced Energy Materials9篇等,皆为唯一通讯作者。
1. Hard-Carbon-Stabilized Li-Si Anodes for high-performance All-Solid-State Li-ion Batteries.
W. Yan, Z Mu, Z. Wang, Y. Huang, D. Wu, P. Lu, J. Lu, J. Xu, Y. Wu, T. Ma, M. Yang, X. Zhu, Y. Xia, S. Shi, L. Chen, H. Li, F. Wu*.
Nature Energy (IF=67.439) 2023, 8, 800–813
2. Realizing long-cycling all-solid-state Li-In||TiS2 batteries using Li6+xMxAs1-xS5I (M=Si, Sn) sulfide solid electrolytes.
P. Lu, Y. Xia, G. Sun, D. Wu, S. Wu, W. Yan, X. Zhu, J. Lu, Q. Niu, S. Shi, Z. Sha, L. Chen, H. Li, F.Wu*.
Nature Communications 2023, 14,4077.
3. Advanced Sulfide Solid Electrolyte by Core-Shell Structural Design.
F. Wu, F. William, et. al.
Nature Communications, 2019, 9 (1), 4037(Editor's Highlight Paper).
4. High-Areal-Capacity and Long-Cycle-Life All-Solid-State Battery Enabled By Freeze Drying Technology.
T. Ma, Z. Wang, D. Wu, P. Lu, X. Zhu, M. Yang, J. Peng, L. Chen, H. Li, F. Wu*.
Energy & Environmental Science (IF=40) 2023, 16, 2142 - 2152.
5. Self-adaptive Interfacial Glue for Low-pressure Sulfide-Based All-Solid-State Lithium Metal Batteries
D. Wu, Z. Zhang, L. Wang, L. Zhu, H. Li, L. Chen, F. Wu*
Energy & Environmental Science (IF=40) 2026, 19, 1630-1641.
6. Solid state ionics - selected topics and new directions.
F. Wu, L. Liu, S. Wang, J. Xu, P. Lu, W. Yan, J. Peng, D. Wu, H. Li*
Progress in Materials Science (IF=48.165), 2022, 126,100921.
7. Solid-State Lithium Batteries-From Fundamental Research to Industrial Progress.
D. Wu, L. Chen, H. Li, F. Wu*.
Progress in Materials Science (IF=48.165), 2023, 139,101182.
8. Progress in Solvent-Free Dry-Film Technology for Batteries and Supercapacitors.
Y. Li, Y. Wu, Z. Wang, J. Xu, T. Ma, L. Chen, H. Li*, F. Wu*.
Materials Today (IF=31.041), 2022, 55,92-109.
9. Tailoring Sulfide Particle Size for All-Solid-State Lithium Metal Batteries
Z. Zhang, C. Jing, J. Yao, Y. Wu, D. Wu, W. He, F. Xu, T. Ma, H. Li, L. Chen, F. Wu*
Advanced Materials (IF=32.086), 2026,38,11,e22525
10. All Solid State Battery with Soft Carbon - TiSi2 Multilayer Structure for Optimized LiSi Anodes
Q. Li, W. He, M. Li, J. Luo, W. Yan, D. Wu, Z. Zhang, C. Guo, C. Yi, L. Chen, F. Wu*
Advanced Materials (IF=32.086), 2025,38,e12753.
11. Intrinsic Structural and Coordination Chemistry Insights of Li Salts in Rechargeable Lithium Batteries
S. Wang, L. Zhang, Z. Hu, B. Zhang, N. Li, Y. Tong, D. Cao, X. Zheng, W. Lai, Z. Jin, F. Wu* Q. Wang*
Advanced Materials (IF=32.086), 2025,37,11,2420428.
12. Long-Life Lithium-Metal All-Solid-State Batteries and Stable Li Plating Enabled by In-situ Formation of Li3PS4 in SEI Layer.
J. Xu, J. Li, Y. Li, M. Yang, L. Chen, H. Li, F. Wu*.
Advanced Materials (IF=32.086), 2022, 2203281.
13. Superior all-solid-state batteries enabled by gas-phase synthesized sulfide electrolyte with ultra-high moisture stability and ionic conductivity.
P. Lu, L. Liu, S. Wang, J. Xu, J. Peng, W. Yan, Q. Wang, H. Li, L. Chen, F. Wu*.
Advanced Materials (IF=30.849), 2021, 2100921.
14. Low-Pressure Sulfide All-Solid-State Lithium-Metal Pouch Cell By Self-limiting Electrolyte Design
F. Xu, Y. Wu, L. Wang, G. Liu, D. Wu, C. Yi, J. Luo, Z. Zhang, W. He, M. Yang, H. Li, L. Chen, F. Wu*
Advanced Energy Materials (IF=29.698),2025, 2405369.
15. In-situ formed Li3N networks by soft carbon-Si3N4 for superior all-solid-state lithium-metal batteries
Z. Wang, Z. Mu, T. Ma, W. Yan, D. Wu, Y. Li, M. Yang, J. Peng, Y. Xia, S. Shi, L. Chen, H. Li, F. Wu*
Advanced Energy Materials (IF=29.698), 2024,14,26,2400003.
16. High-Areal-Capacity and Long-Cycle-Life All-Solid-State Lithium-Metal Battery By MixedConduction Interface Layer
M. Yang, Z. Wang, T. Ma, D. Wu, P. Lu, J. Peng, Q. gao, X. Zhu, Z. Jiang, L. Chen, H. Li, F. Wu*
Advanced Energy Materials (IF=29.698), 2024,2303229
17. High-Capacity, Long-Life Iron Fluoride All-Solid-State Lithium Battery with Sulfide Solid Electrolyte.
J. Peng, X. Wang, L. Chen, H. Li, F. Wu*.
Advanced Energy Materials (IF=29.698), 2023, 2300706.
18. Thermal Stability of Sulfide Solid Electrolyte with Lithium metal.
Y. Wu, J. Xu, P. Lu, J. Lu, L. Gan, S. Wang, R. Xiao, H. Li, L. Chen, F. Wu*.
Advanced Energy Materials (IF=29.698), 2023, in press.
19. Long-life Sulfide All-solid-state Battery Enabled by Substrate-Modulated Dry-Process Binder.
Y. Li, Y. Wu, T. Ma, Z. Wang, Q. Gao, J. Xu, L. Chen, H. Li, F. Wu*.
Advanced Energy Materials (IF=29.698), 2022, 01732.
20. A High-Throughput Search for Functionally Stable Interfaces in Sulfide Solid-State Lithium Ion Conductors.
F. Wu (co-first), et. al.
Advanced Energy Materials, 2019, 1900817.
21. Water-Stable Sulfide Solid Electrolyte Membranes Directly Applicable in All-Solid-State Batteries Enabled by Superhydrophobic Li+-conducting Protection Layer,
J. Xu, Y. Li, P. Lu, W. Yan, H. Li, L. Chen, F. Wu*.
Advanced Energy Materials (IF=29.368), 2021, 2102348.
22. Ultrahigh-Rate All-Solid-State Batteries with a Dendrite-Free LiAl Anode via Compositional and Structural Engineering.
L. Zhu, Z. Zhang, D. Wu, C. Xu, W. He, L. Chen, F. Wu*
ACS Energy Letters (IF=22) 2026
23. Nitrogen-Deficient Graphitic Carbon Nitride For Superior All-Solid-State Sulfide-Based Lithium Metal Batteries
C. Yi, J. Luo, F. Xu, D. Wu, C. Xu, L. Wang, W. He, Z. Zhang, C. Wang, H. Li, L. Chen, F. Wu
Advanced Functional Materials(IF=19.924), 2026, e31222
24. High-Capacity, Long-Life sulfide all-solid-state batteries with single-crystal Ni-rich layered oxide cathodes
H. Liu, Y. Wang, L. Chen, H. Li, F. Wu*
Advanced Functional Materials(IF=19.924), 2024, 2315701.
25. Dual-function modifications for high-stability Li-Rich cathode towards Sulfide All-Solid-State Batteries
Y. Wang, D. Wu, P. Chen, P. Lu, X. Wang, L. Chen, H. Li, F. Wu*
Advanced Functional Materials(IF=19.924), 2023, 2309822
26. High Current Density and Long Cycle Life Enabled by Sulfide Solid Electrolyte and Dendrite-Free Liquid Lithium Anode.
J. Peng, D. Wu, F. Song, S. Wang, Q. Niu, J. Xu, P. Lu, H. Li, L. Chen, F. Wu*.
Advanced Functional Materials(IF=19.924), 2021, 2105776.
27. Wide-temperature, Long-cycling, and High-loading Pyrite All-solid-state Batteries Enabled by Argyrodite Thioarsenate Superionic Conductor.
P. Lu, Y. Xia, G. Sun, S. Shi, Z. Sha, L. Chen, H. Li, F. Wu*.
Advanced Functional Materials(IF=19.924), 2022, 2211211.
28. 5V-Class Sulfurized Spinel Cathode Stable in Sulfide All-Solid-State Batteries.
Y. Wang, Y. Lv, Y. Su, L. Chen, H. Li, F. Wu*.
Nano Energy (IF=17.881), 2021, 90,106589.
29. Interfacial and Cycle Stability of Sulfide All-Solid-State Batteries with Ni-Rich Layered Oxide Cathodes.
J. Wang, Z. Zhang, J. Han, X. Wang, L. Chen, H. Li, F. Wu*.
Nano Energy (IF=17.881), 2022, 107528.
30. Air Stability of Sulfide Solid-state Batteries and Electrolytes.
P. Lu#, D. Wu#, L. Chen, H. Li*, F. Wu*.
Electrochemical Energy Reviews (IF=30.01), 2022, 5:3.
31. Improving Thermal Stability of Sulfide Solid Electrolytes: An Intrinsic Theoretical Paradigm.
S. Wang, Y. Wu, H. Li, L. Chen, F. Wu*.
Infomat (IF=25.405) 2022, 212316.
32. Progress in Thermal Stability of All-Solid-State-Li-Ion-Batteries.
Y. Wu#, S. Wang#, H. Li, L. Chen, F. Wu*.
Infomat(IF=25.405), 2021, 1-27 (Cover Image) .
33. Tuning discharge voltage by Schottky electron barrier in P2-Na2/3Mg0.205Ni0.1Fe0.05Mn0.645O2.
Y. Wang, Z. Shadike, W. Fitzhugh, F. Wu, S. Lee, J. Lee, X. Chen, Y. Long, E. Hu, X. Li*.
Energy Storage Materials, 2023, 55, 587-596
34. High-Safety, Wide-Temperature-Range, Low-External-Pressure and Dendrite-Free Lithium Battery with Sulfide Solid Electrolyte.
J. Peng, D. Wu, P. Lu, Z. Wang, Y. Du, Y. Wu, Y. Wu, W. Yan, J. Wang, H. Li, L. Chen F. Wu*.
Energy Storage Materials (IF=20.831) 2023, 54: 430-439.
35. Stable Interface Between Sulfide Solid Electrolyte and-Room-Temperature Liquid Lithium Anode. J. Peng, D. Wu, Z. Jiang, P. Lu, Z. Wang, T. Ma, M. Yang, H. Li, L. Chen, F. Wu*.
ACS Nano (IF=18.9)2023, in press
36. Thermal Stability between Sulfide Solid Electrolytes and Oxide Cathode.
S. Wang, Y. Wu, T. Ma, L. Chen, H. Li, F. Wu*.
ACS Nano (IF=18.9), 2022, 16, 10, 16158–16176.
37. Strain-Stabilized Ceramic-Sulfide Electrolytes.
F. Wu(co-first), Luhan Ye, Haoqing Su, Xin Li et al.
Small, 2019, 1901470.
38. Anode Interfacial Issues in Solid-State Li Batteries: Mechanistic Understanding and Mitigating Strategies.
J. Wang, L. Chen, H. Li, F. Wu*.
Energy & Environmental Materials (IF=15.122), 2023, 0, e12613
39. Fast Charge Storage Kinetics by Surface Engineering for Ni-Rich Layered Oxide Cathode. J. Wang,
Z. Zhang, W. He, Z. Wang, S. Weng, Q. Li, X. Wang, S. Barg, L. Chen, H. Li, F. Wu*. Journal of
Materials Chemistry A (IF=14.511), 2023, 11, 10239 - 10253.
40. High-Capacity Sulfide All-Solid-State Lithium battery with Conversion-type Iron Fluoride Cathode.
X. Wang, Z. Wang, L. Chen, H. Li, F. Wu*.
Journal of Materials Chemistry A (IF=14.511), 2023, in press.
41. Doping Strategy and Mechanism for Oxide and Sulfide Solid Electrolytes with High Ionic Conductivity.
Y. Wang, Y. Wu, Z. Wang, L. Chen, H. Li*, F. Wu*.
Journal of Materials Chemistry A (IF=12.732) 2022, 10, 4517 - 4532.
42. Toward Better Batteries: Solid-State Battery Roadmap 2035+.
D. Wu, F. Wu*.
eTransportation, (IF=13.661), 2023,16,100224.
43. In-situ CNT-loaded Organic Cathodes for Sulfide All-solid-state Li Metal Batteries.
F. Song, Z. Wang, G. Sun, T. Ma, D. Wu, L. Chen, H. Li, F. Wu*.
eTransportation (IF=13.661), 2023, 100261, 2590-1168.
44. Practical Evaluation of Energy Densities for Sulfide Solid-State Batteries.
L. Liu, J. Xu, S. Wang, F. Wu*, H. Li*, L. Chen.
eTransportation(IF=13.661), 2019, (1) 100010.
45. Liquid-involved synthesis and processing of sulfide-based solid electrolytes, electrodes and all-solidstate batteries.
J. Xu, L. Liu, N. Yao, F. Wu*, H. Li*, L. Chen.
Materials Today Nano, 2019,100048.
46. New Technologies and New Applications of Advanced Batteries.
D. Wu, H. Li, B. Kang, L. Lu, X. Sun, F. Wu*.
Applied Physics Letters, 2023, 123, 000000. doi: 10.1063/5.0164527
47. Recent Progress of Solid-Sstate Lithium Batteries in China.
D. Wu, L. Chen, H. Li, F. Wu*.
Applied Physics Letters, 2022,121, 120502.
48. Long-life High-capacity Lithium Battery with Liquid Organic Cathode and Sulfide Solid Electrolyte.
J. Peng, D. Wu, H. Li, L. Chen & F. Wu*
Battery Energy, 2023, 20220059.
49. Application of liquid metal electrodes in electrochemical energy storage.
J. Peng, H. Li, L. Chen & F. Wu*.
Precision Chemistry, 2023, in press.
50. Air/water Stability Problems and Solutions for Lithium Batteries.
M. Yang, L. Chen, H. Li*, F. Wu*.
Energy Materials Advances, 2022, 9842651.
51. Stable Ni-rich layered oxide cathode for sulfide all-solid-state lithium battery.
Y. Wang, Z. Wang, D. Wu, Q. Niu, P. Lu, T. Ma, Y. Su, L. Chen, H. Li, F. Wu*.
eScience, 2022, 2, 537-545.
52. Progress in Lithium Thioborate Superionic Conductors.
X. Zhu, Z. Zhang, L. Chen, H. Li. F. Wu*.
Journal of Materials Research (invited paper), 2022, 37, 3269–3282.
53. Liquid-phase Synthesis of Li2S and Li3PS4 with Lithium-based Organic Solutions.
J. Xu, Q. Wang, W. Yan, L. Chen, H. Li. F. Wu*.
Chinese Physics B, 2022, 31,098203.
54. Application of Si-based Anodes In Sulfide Solid-State Batteries.
W. Yan, F. Wu*, H. Li, L. Chen.
Energy Storage Science and Technology, 2021, 10(3): 821-835.
55. Advances in Electrochemical Stability of Sulfide Solid-state Electrolyte.
L. Liu, F. Wu*, H. Li*, L. Chen.
J Chin Ceram Soc, 2019, 47(10): 1-19
56. Defects in thin-film heterostructured materials (invited review),
F. Wu, et al
Nanoscience & Nanotechnology-Asia, 2018, Accepted.
57. In-situ synthesis and defect evolution of single-crystal piezoelectric nanoparticles,
F. Wu*, N. Yao
Nano Energy, 2016, 28, 195-205.
58.Advances in windowed gas cells for in-situ TEM studies,
F. Wu*, N. Yao,
Nano Energy, 2015, 13, 735-756.
59. Advances in sealed liquid cells for in-situ TEM electrochemial investigation of lithium-ion battery,
F. Wu*, N. Yao
Nano Energy, 2015, 11, 196-210.
60. Tuning exchange bias in epitaxial Ni/MgO/TiN heterostructures integrated on Si(1 0 0).
F. Wu, SS Rao, JT Prater, J. Narayan
Current Opinion in Solid State and Materials Science, 2014, 18 (5), 279-285.
61. Macroscopic twinning strain in nanocrystalline Cu.
F. Wu, Y.T. Zhu, J. Narayan
Materials Research letters, 2013, 2 (2), 63-69.
62. Nanoscale electrical properties of epitaxial Cu3Ge film,
F. Wu*, W.Cai, N. Yao
Scientific Reports, 2016, 6, 28818.
63. Energy scavenging based on a single-crystal PMN-PT nanobelt,
F. Wu*, W. Cai, Y. Yeh, S. Xu, N. Yao,
Scientific Reports, 2016, 6, 22513.
64. Controlled epitaxial growth of bcc and fcc Cu on MgO for integration on Si.
F. Wu, J. Narayan
Crystal Growth & Design, 2013, 13 (11), 5018–5024.
65. PMN-PT nanostructures for energy scavenging,
F. Wu*, N. Yao
Semiconductor Science and Technology, 2017. 32 (6), 063001.
66. Work function of Cu3Ge thin film,
F. Wu*, N. Yao
Microscopy and Microanalysis, 2016, 22 (S3), 1654-1655
67. Fabrication of epitaxial Cu3Ge on sapphire with controlled crystallinity and planar defects,
F. Wu, J.K. Zheng, W. Cai, N. Yao, Y.T. Zhu, J. Narayan
Journal of Alloys and Compounds, 2015, 641, 238-243.
68. Twin intersection mechanisms in nanocrystalline fcc metals.
F. Wu, H.M. Wen, E.J. Lavernia, J. Narayan, Y.T. Zhu
Materials Science and Engineering: A, 2013, 585 (0), 292-296.
69. Grain size effect on twin density in as-deposited nanocrystalline Cu film.
F. Wu, Y.T. Zhu, J. Narayan,
Philosophical Magazine, 2013, 93 (35), 4355-4363.
70. Nanoelectronics and Materials Development, ISBN 978-953-51-4734-3,
F. Wu*, N. Yao
Book edited by Dr. Abhijit Kar, publisher: INTECH.
71. Microscopy and Analysis, ISBN 978-953-51-4723-7,
F. Wu*, N. Yao,
Book edited by: Stefan Stanciu, publisher: INTECH.
72. Reversible flat to rippling phase transition in Fe containing layered battery electrode materials,
X. Chen, S. Hwang, R. Chisnell, Y. Wang, F. Wu, S. Kim, J. W. Lynn, D. Su, and X. Li,
Advanced Functional Materials, 2018, 1803896.
73. 硫化物全固态电池,化学工业出版社
吴凡著,2026(国内首部硫化物全固态电池领域专著)
(以下省去30余篇)
发明专利:
1. 吴凡,李泓. 与固态电解质兼容稳定的包覆材料的高通量预测方法,201910292851.0
2. 吴凡,李泓. 与硫化物固态电解质兼容稳定的包覆材料的预测筛选方法,201910292854.4
3. 吴凡,李泓,王朔. 一种硫化物固态电解质的大规模制备方法,201910419366.5
4. 吴凡,王朔,李泓. 一种含卤素晶体硫化物固态电解质规模化制备方法,201911209994.7
5. 吴凡,许洁茹,李泓. 一种合成硫化锂的方法
6. 吴凡,许洁茹,李泓. 一种硫化物固态电解质的制备方法, 201910991235.4
7. 吴凡,王朔,李泓. 一种大容量二次电池及其用途,202010351655.9
8. 吴凡,许洁茹,李泓. 一种合成硫化锂的方法,202010377904.1
9. 吴凡,卢普顺,李泓. 硫化物固态电解质材料及其原料的气相合成方法及应 202010792068.3
10. 吴凡,卢普顺,李泓. 一种用于硫化物电解质材料检测的检测装置和方法,202010792074.9
11. 吴凡,卢普顺,李泓. 可分离回收的硫化物型固态电解质及其应用,202010792060.7
12. 吴凡,彭健,李泓. ,硫化物-聚合物复合固态电解质及其制备方法和应用,202010935548.0
13. 吴 凡,卢普顺,李泓. 硫化物固态电解质材料及其原料的气相合成方法及应用PCT/CN2020/137882
14. 吴凡,许洁茹,李泓. 一种可传导锂离子的超疏水材料及其制备方法及应用 202011593230.5
15. 吴凡,伍登旭,李泓. 一种基于硫化物固态电解质的新型电池,202011629806.9
16. 吴凡,王玥,李泓. 用于改善硫化物电解质界面稳定性的正极材料和应用,202110511013.5
17. 吴凡,王朔,李泓. 耐高温硫化物电解质,202111162845.7
18. 吴凡,王朔,李泓. 含掺杂元素的耐高温硫化物电解质,202111166201.5
19. 吴凡,王朔,李泓. 具有核壳结构的耐高温硫化物电解质,202111162856.5
20. 吴凡,王朔,李泓. 富含锂的耐高温硫化物电解质,202111162858.4
21. 吴凡,王朔,李泓. 富含磷的耐高温硫化物电解质,202111166192.X
22. 吴凡,王朔,李泓. 一种提高硫化物固态电解质的热稳定性的方法,202111162860.1
23. 吴凡,卢普顺,李泓. 一种具有补锂和吸湿作用的硫化物固态电解质,202210129086.2
24. 吴凡,卢普顺,李泓. 一种 TiS2 复合正极及全固态电池器件,202210130015.4
25. 吴凡,卢普顺,李泓. 一种 FeS2 复合正极及全固态电池器件,202210129111.7
26. 吴凡,尹立坤,王玥. 硫化物全固态锂电池用硫化正极材料及其制备方法,202210264836.7
27. 吴凡, 闫汶琳,李泓. 硬碳稳定锂硅合金负极及电池,202210704738.0
28. 吴凡, 闫汶琳,李泓. 一种安全稳定的活化负极,202210706751.X
29. 吴凡,王志轩,李泓. 一种纳米硅氮包覆碳复合材料在负极中的应用,202210706729.5
30. 吴凡,王志轩,李泓. 一种具有锂枝晶抑制作用的活化负极, 202210704736.1
31. 吴凡,王雪,李泓. 用于硫化物全固态锂电池的 rGO-FeF3 复合材料,202211296513.2
32. 吴凡,王志轩,李泓. 一种可适用于硫化物全固态锂金属电池的有机阴极材料202211297943.6
33. 吴凡,王雪,李泓. rGO-FeF3 复合材料的制备方法及应用,202211297315.8
34. 吴凡,王雪,李泓. 氟化铁正极的制备方法及其在硫化物全固态电池中的应用202211296554.1
35. 吴凡,马腾欢,王志轩. 卤化物固态电解质的制备方法和应用,202211384307.7
36. 吴凡,卢普顺. 一种 TiS2 复合正极及全固态电池器件,202310631211.4
37. 吴凡,高起发,伍登旭. 一种改性界面层、锂负极及其制备方法,202310650079.1
38. 吴凡,高起发,伍登旭. 一种复合界面层、锂负极及其制备方法,202310650092.7
39. 吴凡,卢普顺. 一种 FeS2 复合正极及全固态电池器件 202310660084.0
40. 吴凡,卢普顺. 一种具有补锂和吸湿作用的硫化物固态电解质,202310677988.4
41. 吴凡,马腾欢,王志轩. 一种钴酸锂正极材料的制备方法及其电池,202310707656.6
42. 吴凡,高起发,朱祥. 一种锂负极的改性方法及其电池,202310751822.2
43. 吴凡,高起发,朱祥. 一种界面层及其在电池中的应用,202310751796.3
44. 吴凡,吴钰婧. 固态电池热失控行为的评估和检测方法,202310842767.8
45. 吴凡,杨明,王志轩. 一种复合锂负极及其制备方法和电池,202310907723.9
46. 吴凡,王志轩. 一种具有高扩散系数界面层及其制备方法和电池,202310908112.6
47. 吴凡,王志轩,宋凤梅. 一种超高电子电导率的有机阴极材料及其制备方法和电池202310907932.3
48. 吴凡,朱祥. 一种硼辅助硫化合成硫化物固态电解质的方法,202310948395.7
49. 吴凡,朱祥. Li-B-S 体系硫化物固态电解质及其制备方法和电池, 202310948330.2
50. 吴凡,杨明. 一种碳系界面层和制备方法及其在电池中的应用,202310999501.4
51. 吴凡,洪响,伍登旭,彭健,程小露,严润宇,宋凤梅,李泓. 金属负极、电池和电子设备
52. 吴凡,卢普顺,李泓. 硫化物固态电解质材料及其原料的气相合成方法及应用
53. 叶露涵,威廉姆·菲茨休, 吴凡,李鑫. Solid state batteries
54. 李鑫,吴凡, 威廉姆·菲茨休. Solid state electrolytes and methods of production thereof
主要社会及学术任职:
1. 中国共青团常州市委副书记(2023-)
2. 中国能源学会副主任委员(2022);
3. 中国青科协会员(2022);
4. 江苏省第 14 届党代会党代表(2021);
5. 江苏省青科协理事(2021);
6. 常州市青联常委(2021,第 12 届);
7. 溧阳市第 13 届党代会主席团成员、党代表(2021);
8. 溧阳市欧美同学会副会长(2022-);
9. 溧阳市欧美同学会高新区分会会长(2022-);
10.溧阳高新区侨联副主席(2022-);
11.IEEE 储能材料专家委员会常务理事(Standing Director);
12.中国科学技术大学校外合作导师;
13.电子科技大学校外合作导师;
14.第七届全国储能科学与技术大会分论坛(青年储能科学家论坛)主席;
15.第八届中英国际颗粒学论坛分论坛主席;
16.第一届材料化学及前沿学科国际论坛分论坛(电化学储能材料与器件)主席;
17.第五届可再生能源与发展国际研讨会(IWRED 2021)组委会委员;;
18.IEEE 储能材料专家委员会常务理事(Standing Director);
19.中国科学技术大学校外合作导师;
20.《Interdisciplinary Materials》学术编辑;
21.《Nanoscience & Nanotechnology-Asia》高级策划编辑;
22.《Composite Materials Research》编委会委员;
23.《Data in Brief》编委会委员;
24.《储能科学与技术》编委会委员;
25.《Applied Physics Letters》专刊-客座编辑;
26.《Energies》专刊主编;
27.《Energy Material Advances》-固态电池专刊客座编辑;
28.《Crystals》-专刊客座编辑;
29.《储能科学与技术》“固态离子学与储能专刊”客座编辑;
30.《物理学报》“固态电池专刊”客座编辑;
31.《Frontiers in Energy Research》客座编辑;
32.《电化学》-“全固态锂电池”专刊客座编辑;
33.《eTransportation》“Solid-State Batteries”专刊客座编辑;
34.《Energy & Environmental Materials》青年编委;
35.《The innovation》青年编委;
36.《InfoMat》青年编委;
37.《Tungsten》青年编委;
38.《Energy Material Advances》青年编委


