国家自然科学基金国家杰出青年科学基金,精细有机化工(染料、涂料、感光剂、粘合剂与日用化工等),2008.01-2011.12,200万。
代表性工作:
1. Ran, B.; Ran, L.; Wang, Z.; Liao, J.; Li, D.; Chen, K.; Cai, W.; Hou, J.; Peng, X.*, Photocatalytic Antimicrobials: Principles, Design Strategies, and Applications. Chem. Rev. 2023, in press
2. Chen, Y.; Lu, S.; Abbas Abedi, S. A.; Jeong, M.; Li, H.; Hwa Kim, M.; Park, S.*; Liu, X.*; Yoon, J.*; Chen, X.*, Janus-Type ESIPT Chromophores with Distinctive Intramolecular Hydrogen-bonding Selectivity. Angew. Chem. Int. Ed. 2023, n/a (n/a), e202311543.
3. Chen, Y.; Lee, Y. R.; Wang, W.; Fang, Y.; Lu, S.; Han, J.; Chen, X.*; Kim, M. H.*; Yoon, J.*, ESIPT-Inspired Dual-Mode Photoswitches with Fast Molecular Isomerization in the Solid State. Angew. Chem. Int. Ed. 2023, 62 (15), e202301765.
4. Yu, L.; Abbas Abedi, S. A.; Lee, J.; Xu, Y.; Son, S.; Chi, W.; Li, M.*; Liu, X.*; Park, J. H.*; Kim, J. S.*, Blending Low-Frequency Vibrations and Push–Pull Effects Affords Superior Photoacoustic Imaging Agents. Angew. Chem. Int. Ed. 2023, 62 (32), e202307797.
5. Li, M.; Kim, J.; Rha, H.; Son, S.; Levine, M. S.; Xu, Y.*; Sessler, J. L.*; Kim, J. S.*, Photon-Controlled Pyroptosis Activation (PhotoPyro): An Emerging Trigger for Antitumor Immune Response. J. Am. Chem. Soc. 2023, 145 (11), 6007-6023.
6. Park, M.; Sunwoo, K.; Kim, Y.-J.; Won, M.; Xu, Y.; Kim, J.; Pu, Z.; Li, M.*; Kim, J. Y.*; Seo, J. H.*; Kim, J. S.*, Cutting Off H+ Leaks on the Inner Mitochondrial Membrane: A Proton Modulation Approach to Selectively Eradicate Cancer Stem Cells. J. Am. Chem. Soc. 2023, 145 (8), 4647-4658.
7. Xiong, H.; Xu, Y.; Kim, B.; Rha, H.; Zhang, B.; Li, M.*; Yang, G.-F.*; Kim, J. S.*, Photo-controllable biochemistry: Exploiting the photocages in phototherapeutic window. Chem 2023, 9 (1), 29-64.
8. Zhou, X.; Shi, C.; Long, S.; Yao, Q.; Ma, H.; Chen, K.; Du, J.; Sun, W.; Fan, J.; Liu, B.; Wang, L.; Chen, X.; Sui, L.; Yuan, K.; Peng, X., Highly Efficient Photosensitizers with Molecular Vibrational Torsion for Cancer Photodynamic Therapy. ACS Central Sci. 2023, 9 (8), 1679-1691.
9. Lu, Y.; Sun, W.; Du, J.; Fan, J.; Peng, X.*, Immuno-photodynamic Therapy (IPDT): Organic Photosensitizers and Their Application in Cancer Ablation. JACS Au 2023, 3 (3), 682-699.
10. Peng, J.; Wang, S.; Fu, X.; Luo, J.; Wang, L.*; Peng, X., Achieving over 1,000 mW cm−2 Power Density Based on Locally High-Density Cross-Linked Polybenzimidazole Membrane Containing Pillar[5]arene Bearing Multiple Alkyl Bromide as a Cross-Linker. Adv. Funct. Mater. 2023, 33 (6), 2212464.
14. Peng, J.; Fu, X.; Luo, J.; Wang, L.*; Peng, X., Fabrication of high performance high-temperature proton exchange membranes through constructing stable cation-rich domain in polybenzimidazole membrane. Chem. Eng. J. 2023, 453, 139609.
12. Liu, C.; Yin, X.; Wang, S.; Gao, C.; Wang, L.*, Decoupling of thermoelectric parameters in two-dimensional hyperbranched platinum acetylides. Chem. Eng. J. 2023, 451, 138751.
13. Qin, T.; Zhao, X.; Song, C.; Lv, T.; Chen, S.; Xun, Z.; Xu, Z.; Zhang, Z.; Xu, H.; Zhao, C.; Liu, B.*; Peng, X., A ratiometric supramolecular fluorescent probe for on-site determination of cyfluthrin in real food samples. Chem. Eng. J. 2023, 451, 139022.
14. Li, M.; Xu, Y.; Pu, Z.; Xiong, T.; Huang, H.; Long, S.; Son, S.; Yu, L.; Singh, N.; Tong, Y.; Sessler, J. L.*; Peng, X.*; Kim, J. S.*, Photoredox catalysis may be a general mechanism in photodynamic therapy. Proc. Natl. Acad. Sci. U.S.A. 2022, 119 (34), e2210504119.
15. Li, M.; Gebremedhin, K. H.; Ma, D.; Pu, Z.; Xiong, T.; Xu, Y.; Kim, J. S.*; Peng, X.*, Conditionally Activatable Photoredox Catalysis in Living Systems. J. Am. Chem. Soc. 2022, 144 (1), 163-173.
16. Yu, L.; Xu, Y.; Pu, Z.; Kang, H.; Li, M.*; Sessler, J. L.*; Kim, J. S.*, Photocatalytic Superoxide Radical Generator that Induces Pyroptosis in Cancer Cells. J. Am. Chem. Soc. 2022, 144 (25), 11326-11337.
17. Ma, H.; Lu, Y.; Huang, Z.; Long, S.; Cao, J.; Zhang, Z.; Zhou, X.; Shi, C.; Sun, W.; Du, J.; Fan, J.; Peng, X.*, ER-Targeting Cyanine Dye as an NIR Photoinducer to Efficiently Trigger Photoimmunogenic Cancer Cell Death. J. Am. Chem. Soc. 2022, 144 (8), 3477-3486.
18. Tong, Y.; Li, M.; Huang, H.; Long, S.; Sun, W.; Du, J.; Fan, J.; Wang, L.; Liu, B.; Peng, X.*, Urea-Bond Scission Induced by Therapeutic Ultrasound for Biofunctional Molecule Release. J. Am. Chem. Soc. 2022, 144 (37), 16799-16807.
19. Zheng, S.; Shao, W.; Lu, S.; Chen, Y.; Cui, L.; Jiang, L.; Gu, H.; Wang, Y.; Peng, J.; Wang, Y.; Yan, X.; Wang, F.; Wu, B.; Chen, X.*, Fluorescent labeling of dicysteine-tagged peptide for monitoring and optimization of protein bio-production in bacteria. AIChE J. 2022, 68 (12), e17912.
20. Yao, Q.; Fan, J.*; Long, S.; Zhao, X.; Li, H.; Du, J.; Shao, K.; Peng, X.*, The concept and examples of type-III photosensitizers for cancer photodynamic therapy. Chem 2022, 8 (1), 197-209.
21. Li, M.; Xu, Y.; Peng, X.*; Kim, J. S.*, From Low to No O2-Dependent Hypoxia Photodynamic Therapy (hPDT): A New Perspective. Acc. Chem. Res. 2022, 55 (22), 3253-3264.
22. Son, S.; Kim, J.; Kim, J.; Kim, B.; Lee, J.; Kim, Y.; Li, M.*; Kang, H.*; Kim, J. S.*, Cancer therapeutics based on diverse energy sources. Chem. Soc. Rev. 2022, 51 (19), 8201-8215.
23. Li, H.; Kim, H.; Xu, F.; Han, J.; Yao, Q.; Wang, J.; Pu, K.*; Peng, X.*; Yoon, J.*, Activity-based NIR fluorescent probes based on the versatile hemicyanine scaffold: design strategy, biomedical applications, and outlook. Chem.Soc. Rev. 2022, 51 (5), 1795-1835.
24. Xi, D.; Xu, N.; Xia, X.; Shi, C.; Li, X.; Wang, D.; Long, S.; Fan, J.; Sun, W.*; Peng, X.*, Strong π–π Stacking Stabilized Nanophotosensitizers: Improving Tumor Retention for Enhanced Therapy for Large Tumors in Mice. Adv. Mater. 2022, 34 (6), 2106797.
25. Fan, R.; Liao, W.; Fan, S.; Chen, D.; Tang, J.; Yang, Y.; Liu, C.*, Regulating Interfacial Li-Ion Transport via an Integrated Corrugated 3D Skeleton in Solid Composite Electrolyte for All-Solid-State Lithium Metal Batteries. Adv. Sci. 2022, 9 (8), 2104506.
26. Chen, W.; Chen, P.; Chen, D.; Liu, Y.*; Zhang, G.; Wang, L.; Chen, L.*, Triangular Topological 2D Covalent Organic Frameworks Constructed via Symmetric or Asymmetric “Two-in-One” Type Monomers. Adv. Sci. 2022, 9 (19), 2105517.
27. Liu, C.*; Zhu, F.; Huang, Z.; Liao, W.; Guan, X.; Li, Y.; Chen, D.; Lu, Z., An integrate and ultra-flexible solid-state lithium battery enabled by in situ polymerized solid electrolyte. Chem. Eng. J. 2022, 434, 134644.
28. Ding, Z.; Tang, Q.; Liu, Y.; Yao, P.; Liu, C.*; Liu, X.*; Wu, J.*; Lavorgna, M., Integrate multifunctional ionic sieve lithiated X zeolite-ionic liquid electrolyte for solid-state lithium metal batteries with ultralong lifespan. Chem. Eng. J. 2022, 433, 133522.
29. Min, Y.; Guo, L.; Wei, G.; Xian, D.; Zhang, B.*; Wang, L.*, Enhancing the safety and cyclic performance of lithium-ion batteries using heat resistant and wettable separator based on covalent organic framework and polybenzimidazole. Chem. Eng. J. 2022, 443, 136480.
30. Wei, J.; Wu, D.; Liu, C.; Zhong, F.; Cao, G.; Li, B.; Gao, C.; Wang, L.*, Free-standing p-Type SWCNT/MXene composite films with low thermal conductivity and enhanced thermoelectric performance. Chem. Eng. J. 2022, 439, 135706.