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复旦大学  聚合物分子工程国家重点实验室   闫强研究组

       本课题组主要致力于高分子化学的研究及其在材料科学上的应用,发现新型具有良好应用前景的功能材料。现阶段的研究课题包括仿生细胞器、刺激响应聚合物系统,大分子纳米器件、多维聚合物自组装机制。此外,我们也着重应用现代化的高分子合成方法来设计、合成新型的功能化的高分子。在J. Am. Chem. Soc.、Angew. Chem. Int. Ed.等国际顶级杂志上发表SCI论文多篇,他引1000次。

         本研究组是以青年为主体的、有朝气的、蓬勃向上的科研组;欢迎具有化学、物理、材料背景的师生合作交流。

闫强 研究员简介

闫强   研究员 (1985年生)
专 业: 高分子化学与物理.



中央组织部第六批青年千人计划(2014);
北京市优秀博士论文奖(2013);
国家唐敖庆化学奖(2012);
中国教育部学术新人奖(2011).

     闫强研究员2015年入选中组部第11批“千人计划”青年项目,受聘为复旦大学高分子科学系研究员、博士生导师。

      闫强研究员于2012年获得清华大学高分子化学与物理专业博士学位,师从袁金颖教授,从事“刺激响应性聚合物的设计与组装”,所著博士论文获得2013年北京市优秀博士论文。同年赴加拿大Sherbrooke大学化学系继续博士后研究工作,合作导师是加拿大首席科学家、光响应聚合物领域奠基人Yue Zhao教授,研究方向涉及“智能大分子功能材料”。2015年加入复旦大学高分子科学系,从事生物信号分子响应性聚合物、大分子基仿生细胞运动与功能调控、聚合物自组装与智能化纳米机器方面的研究工作。

      研究期间,已在国际权威刊物发表论文34篇,包括J. Am. Chem. Soc., Angew. Chem. Int. Ed., Chem. Sci., Chem. Commun.等。论文多次被选为封面文章,并数次被Nature Chemistry、Nature Materials、Nature China、Chemistry World、Synfacts等评述性杂志重点评论或突出报道,论文总引用超过1100次。

复旦大学高分子科学系任教,研究员,博导

2015年5月-至今

加拿大舍布鲁克大学化学系,博士后

2012年-2015年

组内成员

张建 博士

E-mail: zhangjian507@fudan.edu.cn

研究方向:高分子聚合方法、光化学与物理

刘连晓 博士

E-mail: liulianxiao@fudan.edu.cn

研究方向:蛋白质配体的设计、合成及组装

桑伟

E-mail: 15110440020@fudan.edu.cn

研究方向:刺激响应高分子的设计、合成与自组装

陈亮

E-mail: 16110440012@fudan.edu.cn

研究方向:智能界面材料

许妙苗

E-mail: 16210440022@fudan.edu.cn

研究方向:蛋白质配体的设计、合成及组装

郝翔

E-mail: 16110440017@fudan.edu.cn

研究方向:智能流体与凝胶

朱建楠

E-mail: 17110440046@fudan.edu.cn

研究方向:蛋白质组装体系的构建

刘仁杰

E-mail: 17110440031@fudan.edu.cn

研究方向: 刺激响应性多肽的设计、合成与自组装

巩泽浩

E-mail: 18110440039@fudan.edu.cn

研究方向:新型聚合物基的光电纳米材料

曾荣金

E-mail: 18210440026@fudan.edu.cn

研究方向:蛋白质配体的设计、合成及组装

刘希(联培)

E-mail: 923738024@qq.com

研究方向:气体响应性有机凝胶的设计、合成与表征

胡祝芳(联培)

E-mail: 1971555133@qq.com

研究方向:光控诱导原位自组装

张克虎(联培)

E-mail: 904942879@qq.com

研究方向:光引发原位自组装

方乐平

马明煊

黎卓尔

陈轶凡

研究方向

新型刺激响应聚合物

聚合物仿生细胞器

智能纳米器件

发表文章

45. Polymer Meets Frustrated Lewis Pair: Second‐Generation CO2‐Responsive Nanosystem for Sustainable CO2 Conversion

Chen, L.#; Liu, R.#; Yan, Q.* Angewandte Chemie International Edition, 2018, 57,9336-9340.

44. Nanocomplexes of Photolabile Polyelectrolyte and Upconversion Nanoparticles for Near-Infrared Light-triggered Payload Release

Xiang, J.; Ge, F.; Yu, B.; Yan, Q.*; Shi, F.; Zhao, Y.; ACS Applied Materials & Interfaces, 2018, 10,20790-20800.

43. Reversible Self-Assembly of Supramolecular Vesicles and Nanofibers Driven by Chalcogen-Bonding Interactions

Chen, L.#; Xiang, J.#; Zhao, Y.; Yan, Q.*Journal of American Chemical Society, 2018, 14,7079-7082.

42. Natural Triterpenoid-Tailored Phosphate: In Situ Reduction of Heavy Metals Spontaneously to Generate Electrochemical Hybrid Gels

Gao, Y.; Hao, J.; Yan, Q.*; Du, F.; Ju, Y.; Hu, J.* ACS Applied Materials & Interfaces, 2018, 10, 3531-3540.

41. Near-infrared light-triggered drug release from UV-responsive diblock copolymer-coated upconversion nanoparticles with high monodispersity

Xiang, J.; Tong, X.; Shi, F.; Yan, Q.; Yu, B.;Zhao, Y.* Journal of Materials Chemistry B, 2018, 6, 3531-3540.

40. Biological Stimuli-responsive Polymer Systems: Design, Construction and Controlled Self-assembly

Xu, M.; Liu, R.; Yan, Q.* Chinese Journal of Polymer Science, 2018,36347.

39. Electro-Controlled Living Cationic Polymerization

Sang, W.; Yan, Q.* Angewandte Chemie International Edition, 2018, 57, 4907-4911.

38. Allostery-Activated Protein Self-Assembly Constructs Helical Microfilaments with Tunable Helicity

Xu, M.; Liu, L.; Yan, Q.* Angewandte Chemie International Edition, 2018, 57, 5029-5032.

37. Periodically Self-Pulsating Microcapsule as Programmed Microseparator via ATP-Regulated Energy Dissipation

Hao, X.; Chen, L.; Sang, W.; Yan, Q.* Advanced Science, 2018, 5, 1700591.

36. Coenzyme-Catalyzed Electro-RAFT Polymerization

Sang, w.#; Xu, M.#; Yan, Q.* Acs Macro Letters 2017, 6, 1337.

35. Photoswitchable thermogelling systems based on a host–guest approach

Hao, X.; Xu, M.; Hu, J.; Yan, Q.* Journal of Materials Chemistry C, 2017, 5, 10549.

34. Pulsating Polymer Micelles via ATP-Fueled Dissipative Self-Assembly

Hao, X.; Sang, W.; Hu, j.; Yan, Q.* ACS Macro Letters, 2017, 6, 1151.

33. Hydrogen Polysulfide Biosignal-Responsive Polymersomes as a Nanoplatform for Distinguishing Intracellular Reactive Sulfur Species (RSS)

Zhang, J.; Hao, X.; Sang, W.; Yan, Q.* Small, 2017, 13, 1701601.

32. Thermosensitive Triterpenoid-Appended Polymers with Broad Temperature Tunability Regulated by Host–Guest Chemistry

Hao, J.; Gao, Y.; Li, Y.; Hu, J.*; Yan, Q.* ; Hu, J.*; Ju,Y.* Chemistry – An Asian Journal, 2017, 12,2231.

31. Light-Initiated in Situ Self-Assembly (LISA) from Multiple Homopolymers

Chen, L.; Xu, M.; Hu, J.*; Yan, Q.* Macromolecules, 2017, 50, 4276-4280.

30. CO-Signaling Molecule-Responsive Nanoparticles Formed from Palladium-Containing Block Copolymers

Xu, M.#; Liu, L.#; Hu, J.*; Zhao, Y. Yan, Q.* ACS Macro Letters, 2017, 6, 458–462.

29. Triterpenoid-based self-healing supramolecular polymer hydrogels formed by host-guest interactions

Li, Y.; Li, J.; Zhao, X.; Yan, Q.*; Gao, Y.; Hao, J.; Hu,J.* Chemistry-A European Journal, 2016, 22, 18435-18441.

28. Peroxynitrite (ONOO) Redox Signaling Molecule-Responsive Polymersomes

Zhang, J.; Hu, J.;* Sang, W.; Wang, J.; and Yan, Q.* ACS Macro Letters, 2016, 5, 919−924.

27. Sequential Block Copolymer Self-Assemblies Controlled by Metal-Ligand Stoichiometry

Yin, L.; Wu, H.; Zhu, M.; Zou, Q*; Yan, Q.*; Zhu, L.* Langmuir, 2016, 32, 6429−6436

26. H2S Gasotransmitter-responsive Polymer Vesicles

Yan, Q.*; Sang, W. Chemical Science,2016, 7, 2100–2105.

25. Therapeutic Ultrasound-Triggered Shape Memory of Melamine-Enhanced Poly(vinyl alcohol) Physical Hydrogel

Li,G.;Yan, Q.; Xia,H.; Zhao, Y. Acs Applied Materials & Interfaces, 2015, 7, 12067–12073.

24. ATP-triggered Biomimetic Deformations of Bioinspired Receptor-containing Polymer Assemblies

Yan, Q.; Zhao, Y. Chemical Science, 2015, 6, 4343-4349.

23. Photodegradable and Size-tunable Single-chain Nanoparticles Prepared from a Single Main-chain Coumarin-containing Polymer Precursor

Fan, W.; Tong, X.; Yan, Q.; Fu,s.; Zhao, Y.; Chemical Communications, 2014, 50,13492-13494.

22. A CO2- and Temperature-switchable “Tchizophrenic” Block Copolymer: from Vesicles to Micelles

Feng, A.; Zhan, C.; Yan, Q.; Liu, B.; Yuan, J. Chemical Communications, 2014, 50, 8958-8961.

21. Block Copolymer Self-assembly Controlled by the “Green” Gas Stimulus of Carbon Dioxide

Yan, Q.; Zhao, Y. Chemical Communications, 2014, 50, 11631-11641.

20. CO2-Switchable Supramolecular Block Glycopolypeptide Assemblies

Yan, Q.; Zhang, H.; Zhao, Y. ACS Macro Letters, 2014, 3, 472-476.

19. Electrochemical Redox Responsive Polymeric Micelles Formed from Amphiphilic Supramolecular Brushes

Feng, A.; Yan, Q.; Zhang, H.; Peng, L.; Yuan, J. Chemical Communications, 2014, 50, 4740-4742.

18. Light-healable Hard Hydrogels through Photothermally Induced Melting–crystallization Phase Transition

Zhang, H.; Han, D.; Yan, Q.; Fortin, D.; Xia, H.; Zhao, Y. Journal of Materials Chemistry A, 2014, 2, 13373-13379.

17. Stimuli-Responsive Polymer Networks with β-Cyclodextrin and Ferrocene Reversible Linkage Based on Linker Chemistry

Zhang, H.; Peng, L.; Xin, Y.; Yan, Q.; Yuan, J. Macromolecular Symposia, 2013, 329, 66–69.

16. Breathing Polymersomes: CO2-Tuning Membrane Permeability for Size‐Selective Release, Separation, and Reaction

Yan, Q.; Wang, J.; Yin, Y.; Yuan, J. Angewandte Chemie International Edition, 2013, 52, 5070-5073.

15. CO2-Stimulated Diversiform Deformations of Polymer Assemblies

Yan, Q.; Zhao, Y. Journal of the American Chemical Society, 2013, 135, 16300-16303.

14. Main-chain photoresponsive polymers with controlled location of light-cleavable units: from synthetic strategies to structural engineering

Yan, Q.; Han, D.; Zhao, Y. Polymer Chemistry, 2013, 4, 5026-5037.

13. Polymeric Microtubules That Breathe: CO2-Driven Polymer Controlled-Self-Assembly and Shape Transformation

Yan, Q.; Zhao, Y. Angewandte Chemie International Edition, 2013, 52, 9948-9951.

12. Redox-switchable Supramolecular Polymers for Responsive Self-healing Nanofibers in Water

Yan, Q.; Feng, A.; Zhang, H.; Yin, Y.; Yuan, J. Polymer Chemistry, 2013, 4, 1216-1220.

11. Facile and Efficient Fabrication of Photoresponsive Microgels via Thiol–Michael Addition

Zhang, H.; Xin, Y.; Yan, Q.; Zhou, L.; Peng, L.; Yuan, J. Macromolecular rapid communications, 2013, 33, 1952-1957.

10. Fabrication of Thermo-responsive Hydrogels from Star-shaped Copolymer with a Biocompatible β-cyclodextrin Core

Zhang, H.; Yan, Q.; Kang, Y.; Zhou, L.; Zhou, H.; Yuan, J.; Wu, S. Polymer, 2012, 53, 3719-3725.

9. Visible Light-responsive Micelles Formed from Dialkoxyanthracene-Containing Block Copolymers

Yan, Q.; Hu, J.;Zhou, R.; Ju, Y.; Yin, Y.; Yuan, J. Chemical Communications, 2012, 48, 1913-1915.

8. β-cyclodextrin-based Polymeric Nano-receptor: the Self-assembly of Cyclodextrin-appended Comb-copolymer

Kang, Y.; Yuan, J.; Yan, Q.; Zheng, L.; Zhou, L. Polymers for Advanced Technologies, 2012, 23, 255-261.

7. Light-controlled Smart Nanotubes Based on the Orthogonal Assembly of Two Homopolymers

Yan, Q.; Xin, Y.; Zhou, R.; Yin, Y.; Yuan. J. Chemical Communications, 2011, 47, 9594-9596.

6. CO2-responsive Polymeric Vesicles that Breathe

Yan, Q.; Zhou, R.; Fu, C.; Zhang, H.; Yin, Y.; Yuan, J. Angewandte Chemie, 2011, 123, 5025-5029.

5. Voltage-responsive Vesicles Based on Orthogonal Assembly of Two Homopolymers

Yan, Q.; Yuan, J.; Xin, Y.; Kang, Y.; Yin, Y. Journal of the American Chemical Society, 2010, 132, 9268-9270.

4. Dual-Sensing Porphyrin-containing Copolymer Nanosensor as Full-spectrum Colorimeter and Ultra-sensitive Thermometer

Yan, Q.; Yuan, J.; Kang, Y.; Cai, Z.; Zhou, L; Yin, Y. Chemical Communications, 2010, 46, 2781-2783.

3. Dynamic Supramacromolecular Self-assembly: Deformable Polymer Fabricated Nanostructures through a Host-controlled Approach

Yan, Q., Yuan, J.; Kang, Y.; Yin, Y. Polymer Chemistry, 2010, 1, 423-425.

2. Cellulose-based Dual Graft Molecular Brushes as Potential Drug Nanocarriers: Stimulus-responsive Micelles, Self-assembled Phase Transition Behavior, and Tunable Crystalline Morphologies

Yan, Q.; Yuan, J.; Zhang, F.; Sui, X.; Xie, X.; Yin, Y.; Wang, S.; Wei, Y. Biomacromolecules, 2009, 10, 2033-2042.

1. Copolymer Logical Switches Adjusted through Core–shell Micelles: from Temperature Response to Fluorescence Response

Yan, Q.; Yuan, J.; Yuan, W.; Zhou, W., Yin, Y.; Pan, C. Chemical Communications, 2008, 46, 6188-6190.

组内活动

桑伟博士毕业合照

2018年4月春游

2017年11月秋游

2016年1月18日联合组会

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招聘/招生信息

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