学术主页
ResearchGate: https://www.researchgate.net/profile/Chi-Li-42
Google Scholar: https://scholar.google.com/citations?hl=zh-CN&user=FbirjS8AAAAJ
ORCid: https://orcid.org/0000-0002-8509-870X
近5年发表以第一作者(含共同)已发表的学术论文(*:通讯作者;#:共同作者):
入职农大后
18. T. Yan, E. Zhou, C. Li*, Y. Zhong, J. Zhang, K. Han, Z. Jiang, R. Lin*, P. Gao*, X. Ouyang*, Fully Conjugated Biscarboxylate Self-Assembled Molecule Anchoring Enhances Conductive Oxide for Efficient Textured Perovskite/Silicon Tandem Solar Cells. Adv. Funct. Mater. 2026, 36(16): e22599. (SCI-I, Top, IF=19.0).
17. C. Li#, Ganesan P#, Li Y, Tang S, Wang Y, Liu C, Liang L, Yu Y, Yusoff ARBM, Grätzel M, Gao P*. Synergistic Electron-Deficient Surface Engineering: A Key Factor in Dictating Electron Carrier Extraction for Perovskite Photovoltaics. Journal of the American Chemical Society, 2025, 147(29): 25738-25749. (SCI-I, Top, IF=15.6).
16. H. Jiang, T. Yan, X. Huang, C. Li*, X. Ouyang*, Novel Benzocarbazole-based Hole-Transport/Selective Layer with Texture-Tolerance for Efficient Perovskite/Silicon Tandem Photovoltaics. Dyes and Pigments 2025, 246, 113394. (SCI-II, IF=4.2)
入职农大前
15. C. Li, Li Y, Zhang Z,* Zou Y, Wang J, Bao S, Jiang S, Yusoff ARBM, Yu Y,* Ma J,* Gao P.* Steric-Hindrance-Driven Molecular Wedges Suppress SAM Aggregation for 30.5%-Efficient Perovskite/Silicon Tandem Solar Cells. Journal of Energy Chemistry, 2025, 110, 497-506. (SCI-I, Top, IF=14.9).
14. C. Li#, Chen Y#, Li Y, Zhang Z, Yang J, Wang Y, Gong L, Yuan Z, Liang L, Liu S, Zhu Y, Lian C, Haider M, Guo T, Xu X, Li D*, Bi E*, Gao P*. Achieving 32% Efficiency in Perovskite/Silicon Tandem Solar Cells with Bidentate‐Anchored Superwetting Self‐Assembled Molecular Layers. Angewandte Chemie International Edition, 2025, 64(23): e202502730. (SCI-I, Top, IF=16.9).
13. C. Li#, Chen Y#, Li Y, Gong L, Yuan Z, Liang L, Chen J, Ganesan P, Zhang Y, Ma J*, Gao P*. Deciphering the Impact of Aromatic Linkers in Self-Assembled Monolayers on the Performance of Monolithic Perovskite/Si Tandem Photovoltaic. Angewandte Chemie International Edition, 2024, 64(9): e202420585. (SCI-I, Top, IF=16.9).
12. C. Li, Chen Y, Zhang Z, Liu C, Guo F, Ahmad W, Gao P*. Pros and Cons of Hole-Selective Self-Assembled Monolayers in Inverted PSCs and TSCs: Extensive Case Studies and Data Analysis. Energy & Environmental Science, 2024, 17(17): 6157-6203. (SCI-I, Top, IF=30.8).
11. C. Li, Dogan S, Li Y, Zhang H, Tang S, Yuan Z, Liang L, Zhang Z, Wang Y, Liu C, Yang Y, Ince M*, Gao P*. Mitigating VOC Loss in Single‐Junction and Four‐Terminal Tandem Perovskite/Si Photovoltaics with D‐A Phthalocyanines Layers. Advanced Energy Materials, 2024, 15(4): 2402856. (SCI-I, Top, IF=26.0).
10. C. Li, Li Y, Chen Y, Zhang H, Zhang S T, Zhang Z, Lin F, Liang L, Gong L, Hao H, Wang J, Bao S, Yang Y, Nazeeruddin M K, Li D*, Gao P.* Enhancing Efficiency of Industrially-Compatible Monolithic Perovskite/Silicon Tandem Solar Cells with Dually-Mixed Self-Assembled Monolayers. Advanced Functional Materials, 2024, 34(46): 2407805. (SCI-I, Top, IF=19.0).
9. C. Li#, Zhang Z#, Zhang H, Yan W, Li Y, Liang L, Yu W, Yu X, Wang Y, Yang Y, Nazeeruddin M K, Gao P*. Fully Aromatic Self-Assembled Hole-Selective Layer toward Efficient Inverted Wide-Bandgap Perovskite Solar Cells with Ultraviolet Resistance. Angewandte Chemie International Edition, 2024, 63(1): e202315281. (SCI-I, Top, IF=16.9).
8. C. Li, Gao P*. Is Dipole the Only Thing That Matters for Inverted Perovskite Solar Cells? Chinese Journal of Structural Chemistry, 2024, 43(6): 100324. (SCI-I, Top, IF=10.3).
7. C. Li, Peng Gao*. Crystalline Porous Materials in Perovskite Solar Cells: A Mutually Beneficial Marriage. Sustainable Energy & Fuels, 2024, 8(6): 1185-1207. (SCI-IV, IF=4.1).
6. Zhang J#,*, Li Z#, C. Li#, Zhu M, Tang S, Cai K, Cheng Z, Liu C, Xiang S, Zhang Z*. Revealing a New Doping Mechanism of Spiro-OMeTAD with tBP Participation through the Introduction of Radicals into HTM. Chinese Chemical Letters, 2024, 36(3): 110046. (SCI-I, Top, IF=8.9).
5. Zhang J#,*, Tang S#, C. Li#, Zhu M, Chen L, Cai L, Cheng Z, Xiang S, Zhang Z*. Perovskite Crystallization Control for Large, Oriented Grains with Residual Solvent Restrain via Hydrogen-Bonded Organic Frameworks. Small, 2024, 20(50): 2405123. (SCI-II, Top, IF=12.1).
4. C. Li#, Zhang N#, Gao P*. Lessons Learned: How to Report XPS Data Incorrectly about Lead-Halide Perovskites. Materials Chemistry Frontiers, 2023, 7(18): 3797-3802. (SCI-III, IF=6.4).
3. Zhang J#,*, C. Li#, Zhu M, Qiu J, Yang Y, Li L, Tang S, Li Z, Mao Z, Cheng Z, Xiang S, Zhang X*, Zhang Z*. Stable and Environmentally Friendly Perovskite Solar Cells Induced by Grain Boundary Engineering with Self-Assembled Hydrogen-Bonded Porous Frameworks. Nano Energy, 2023, 108: 108217. (SCI-I, Top, IF=17.1).
2. C. Li#; Qiu, J.#; Zhu, M.; Cheng, Z.; Zhang, J.*; Xiang, S.; Zhang, X.*; Zhang, Z.* Multifunctional Anionic Metal-Organic Frameworks Enhancing Stability of Perovskite Solar Cells. Chemical Engineering Journal 2022, 433, 133587. (SCI-I, Top, IF=13.2).
1. C. Li#; Guo, S.#; Chen, J.; Cheng, Z.; Zhu, M.; Zhang, J.*; Xiang, S.; Zhang, Z.* Mitigation of Vacancy with Ammonium Salt-Trapped ZIF-8 Capsules for Stable Perovskite Solar Cells through Simultaneous Compensation and Loss Inhibition. Nanoscale Advances 2021, 3, 3554–3562. (SCI-III, IF=4.6).