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伏露露,女,同济大学预聘助理教授。主要从事有机-无机纳米杂化材料的设计合成、三阶非线性光学性能研究以及可实用光限制材料的技术研发。以第一/共一/通讯作者在Nano Research, Carbon, Journal of Materials Chemistry C, Journalof Alloys and Compounds, New Journalof Chemistry, Tetrahedron Letters等国际学术刊物上发表SCI论文10余篇;申请国家发明专利21项, 已获得发明专利授权18项;参与了国家自然科学基金重点项目1项、上海市教委科创计划重点项目1项、教育部和国家外专局”功能分子、聚集体及器件创制”高等学校学科创新引智项目1项。
1.上海市教委科创计划重点项目1项(参与, 2019.03-2022.03)
2. 国家自然科学基金重点项目1项(参与, 2015.12-2019.12)
3. 教育部和国家外专局“功能分子、聚集体及器件创制”高等学校学科创新引智项目1项(参与, 2013.02-2017.12)
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支持扩展名:.rar .zip .doc .docx .pdf .jpg .png .jpeg[1].上海市教委科创计划重点项目1项(参与, 2019.03-2022.03)
[2]. 国家自然科学基金重点项目1项(参与, 2015.12-2019.12)
[3]. 教育部和国家外专局“功能分子、聚集体及器件创制”高等学校学科创新引智项目1项(参与, 2013.02-2017.12)
一、代表性学术论文
[1] Fu, L.; Guan, Z.; Chen, L.; Yan, Z.; Huang, Z.; Humphrey, M. G.; Zhang, C*.Porphyrin-cored H‑bonded organic polymer hermetically decorated MXene toward broadband optical nonlinearities. ACS Applied Material & Interfaces 2025, 17, 31295−31305.
[2]. Fu, L.; Guan, Z.; Chen, L.; Yan, Z.; Huang, Z.; Humphrey, M. G.; Zhang, C*. Tunable Nonlinear Optical Properties in Porphyrin−CdIIBr2 Complexes Functionalized MXenes Featuring Different Configurations. Chemistry of Materials 2025, 37, 7026−7036.
[3]. Guan, Z.1; Fu, L.1; Chen, L.; Wei, Z.;Fang, L.; Zhao, Y.; Huang, Z.; Humphrey, M. G.; Zhang, C*. Greatly enhanced ultrafastoptical absorption nonlinearities of pyridyl perovskite nanocrystals axiallymodified by star-shaped porphyrins. Chemical Science, 2025, 16, 6720–6735.
[4]. Zhao, Y.; Guan, Z.; Wei, Z.; Fu, L.*; Chen, L.; Huang, Z.; Humphrey, M. G.; Zhang, C*. Enhanced nonlinear optical properties of MXene (Ti3C2Tx) via surface-covalent functionalization with porphyrin. Materials Today Physics, 2024, 48, 101577.
[5] L. Fu, M.G. Humphrey, C. Zhang*, Covalentedge-functionalization of graphene oxide with porphyrins for highly efficientphotoinduced electron/energy transfer and enhanced nonlinear opticalperformance. Nano Research, 2023, 16(1), 25-32.
[6] L. Fu, Y. Fang, Z.Guan, Z. Wei, R. Yang, N. Shan, F. Liu, Y. Zhao, M. Zhang, Z. Huang, M.G.Humphrey, C. Zhang*, Dramatic femtosecond nonlinear absorption at a stronglycoupled porphyrin-graphene nanoconjugate. Nano Research, 2023,16, 5900-5908.
[7] Z.Guan, H. Li, Z. Wei, N. Shan, Y. Fang, Y. Zhao, L. Fu*, Z. Huang, M.G. Humphrey, C. Zhang*,Enhanced nonlinear optical performance of perovskite films passivated byporphyrin derivatives. Journal of Materials Chemistry C, 2023, 11,1509-1521.
[8] L. Fu, H. Li, Y. Fang, Z. Guan, Z. Wei, N. Shan,F. Liu, Y. Zhao, Z. Huang, M. G. Humphrey, C. Zhang*, Cascading electrontransfer and photophysics in a donor-π-acceptor graphene nanoconjugate. Nano Research, 2023, 16, 5909-5918.
[9] Z.Wei, Z. Guan, N. Shan, H. Li, Y. Fang, Y. Zhao, L. Fu*, Z. Huang, M.G. Humphrey, C. Zhang*,Porphyrin covalently functionalized MoS2 nanosheets: “click” synthesis andtunable nonlinear absorption. Journal of Alloys and Compounds, 2023, 934, 167902.
[10] Y.Fang, H. Li, Z. Wei, Z. Guan, N. Shan, L. Fu*, Z. Huang, M.G. Humphrey, C. Zhang*,Covalent functionalization of few-layer tetraphenylporphyrin: toward adonor-acceptor nanohybrid featuring enhanced nonlinear saturation absorption. Journal of Materials Chemistry C, 2022, 10,10876-10887.
[11] L. Fu, J. Ye, H. Li, Z. Huang, M.G. Humphrey, C.Zhang*, Strong near-infrared and ultrafast femtosecond nonlinearities of acovalently-linked triply-fused porphyrin dimer-SWCNT nanohybrid. Nano Research, 2022, 15, 1355-1365.
[12] L.Fu, Y. Fang, R. Yang, Z. Guan, Z. Wei, N. Shan, F. Liu, Y. Zhao, M.G. Humphrey,C. Zhang*, Enhanced nonlinear optical properties of a π-conjugated porphyrindimer-graphene nanocomposite. New Journal of Chemistry, 2022, 46, 10433-10440.
[13] M. Zhang#, L. Fu#, J. Ye, M. G. Humphrey, H. Liu, B. Yan,L. Zhang, J. Shao, C. Zhang*, Covalent-linked porphyrin/single-walled carbonnanotube nanohybrids: synthesis and influence of porphyrin substituents onnonlinear optical performance. Carbon 2017,124, 618-629.
二、已授权专利
[1] 张弛、伏露露、吴超;可修饰型超共轭三重熔融卟啉二聚体强双光子吸收材料及其制备;ZL202010563215.X
[2] 张弛、伏露露、吴超;三重熔融卟啉二聚体共价功能化单壁碳纳米管非线性纳米杂化材料及其制备;ZL202010563322.2
[3] 张弛、伏露露、吴超;一种卟啉酞菁共价双功能化石墨烯非线性纳米杂化材料及其制备方法;ZL202110410328.0
[4] 张弛、伏露露、吴超;一种卟啉边缘共价熔融石墨烯非线性纳米杂化材料及其制备;ZL202110411069.3
[5] 张弛、方言、伏露露;一种四苯基卟啉共价功能化二硫化钛非线性纳米杂化材料及其制备;ZL202111107007.X
[6] 张弛、关子豪、伏露露;一种卟啉共价连接均三氮杂蔻化合物及其制备和应用;ZL202111104899.8
[7] 张弛、魏志远、伏露露;对硝基苯基重氮盐共价修饰二硫化锡薄膜非线性杂化材料及其制备方法;ZL202111108568.1
[8] 张弛、单娜滢、伏露露;碳化钛量子点与钒的金属有机框架的非线性纳米杂化材料及其制备方法;ZL202111107310.X
[9] 张弛、赵洋、伏露露;一种阳离子型卟啉功能化Ti3C2Tx纳米片非线性纳米杂化材料及其制备和应用;ZL202111104895.X
[10] 张弛、刘芳、伏露露;一种二维半导体共轭高分子材料及其制备与在超快激光防护中的应用;ZL202111108591.0
[11] 张弛、李星希、伏露露;一种卟啉共价连接二硫化钼非线性纳米杂化材料及其制备和应用;ZL202111107006.5
[12] 张弛、方言、伏露露;石墨烯量子点共价功能化二维过渡金属碳化物非线性纳米杂化材料及其制备方法;ZL202111108835.5
[13] 张弛、赵洋、伏露露;一种卟啉共价功能化Ti3C2Tx纳米片非线性纳米杂化材料及其制备与应用;ZL202111104895.X
[14] 张弛、单娜滢、伏露露;基于碳化钒与二硫化钼的非线性纳米杂化材料及其制备方法;ZL202111108579.X
[15] 张弛、伏露露;一种卟啉边缘修饰氧化石墨烯纳米杂化材料及其制备和应用ZL202111107008.4
[16] 张弛、伏露露;一种卟啉二聚体石墨烯非线性复合材料及其制备和应用;ZL202111108862.2
[17] 张弛、魏志远、伏露露;一类卟啉马来酰亚胺衍生物共价功能化二硫化钼纳米片非线性杂化材料及其制备与应用;ZL202111105033.9
[18] 张弛、刘芳、伏露露;一种自支撑晶态二维高分子非线性薄膜材料及其制备方法和应用;ZL202210503555.2;
[19] 张弛、刘芳、伏露露;一种自支撑晶态二维高分子非线性薄膜材料及其制备方法和应用;ZL202210503555.2
[20] 张弛、关子豪、伏露露;一种卟啉修饰有机无机杂化钙钛矿的纳米薄膜材料及其制备方法;ZL202111104978.9;
[21] 张弛、方言、伏露露、吴超;富勒烯共价功能化少层碳化钛MXene非线性光学纳米杂化材料及其合成与应用;ZL 202310397810.4;
[22] 张弛、关子豪、伏露露;一种卟啉轴向钝化修饰的钙钛矿纳米杂化材料及其制备与应用;ZL 202310556050.7;
[23] 张弛;刘芳;伏露露;关子豪;魏志远;一种卟啉二维高分子非线性光学材料及其制备和应用;ZL 202410460331.7;
[24] 张弛、伏露露;一种可调谐卟啉-镉络合物迈克烯纳米非线性光学材料及其制备和应用;ZL202411105971.2
[25] 张弛、伏露露;多巴胺型有机聚合物紧密包覆的迈克烯纳米非线性光学材料及其制备和应用;ZL202411105972.7

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