Structure Design of Naphthalimide Derivatives: Toward Versatile Photoinitiators for Near-UVNisible LEDs, 3D Printing, and Water-Soluble Photoinitiating Systems

被引:164
|
作者
Zhang, Jing [1 ]
Dumur, Frederic [2 ]
Xiao, Pu [1 ]
Graff, Bernadette [1 ]
Bardelang, David [2 ]
Gigmes, Didier [2 ]
Fouassier, Jean Pierre [3 ]
Lalevee, Jacques [1 ]
机构
[1] UHA, UMR CNRS 7361, Inst Sci Mat Mulhouse IS2M, F-68057 Mulhouse, France
[2] Aix Marseille Univ, CNRS, Inst Chim Radicalaire ICR, UMR7273, F-13397 Marseille, France
[3] ENSCMu UHA, F-68093 Mulhouse, France
关键词
FREE-RADICAL POLYMERIZATION; PROMOTED CATIONIC-POLYMERIZATION; ACYLGERMANE-BASED PHOTOINITIATOR; PUSH-PULL DYES; VISIBLE-LIGHT; PHOTOCLEAVABLE STRUCTURES; PHOTOPOLYMERIZATION; COMPLEX; SALT; INITIATOR;
D O I
10.1021/acs.macromol.5b00201
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Seven naphthalimide derivatives (NDP1-NDP7) with different substituents have been designed as versatile photoinitiators (PIs), and some of them when combined with an iodonium salt (and optionally N-vinylcarbazole) or an amine (and optionally chlorotriazine) are expected to exhibit an enhanced efficiency to initiate the cationic polymerization of epoxides and the free radical polymerization of acrylates under different irradiation sources (i.e., the LED at 385, 395, 405, 455, or 470 nm or the polychromatic visible light from the halogen lamp). Remarkably, some studied naphthalimide derivative based photoinitiating systems (PIS) are even more efficient than the commercial type I photoinitiator bisacylphosphine oxide and the well-known camphorquinone-based systems for cationic or radical photopolymerization. A good efficiency upon a LED projector at 405 nm used in 3D printers is also found: a 3D object can be easily created through an additive process where the final object is constructed by coating down successive layers of material. As another example of their broad potential, a NDP compound enveloped in a cyclodextrin (CD) cavity, leads to a NDP-CD complex which appears as a very efficient water-soluble photoinitiator when combined with methyldiethanol amine to form a hydrogel. The high interest of the present photoinitiator (NDP2) is its very high reactivity, allowing synthesis in water upon LED irradiation as a green way for polymer synthesis.The structure/reactivity/efficiency relationships as well as the photochemical mechanisms associated with the generation of the active species (radicals or cations) are studied by different techniques including steady state photolysis, fluorescence, cyclic voltammetry, laser flash photolysis, and electron spin resonance spin-trapping methods.
引用
收藏
页码:2054 / 2063
页数:10
相关论文
共 11 条
  • [1] Water-soluble/visible-light-sensitive naphthalimide derivative-based photoinitiating systems: 3D printing of antibacterial hydrogels
    Chen, Hong
    Pieuchot, Laurent
    Xiao, Pu
    Dumur, Frederic
    Lalevee, Jacques
    POLYMER CHEMISTRY, 2022, 13 (20) : 2918 - 2932
  • [2] Coumarin derivatives as versatile photoinitiators for 3D printing, polymerization in water and photocomposite synthesis
    Abdallah, Mira
    Hijazi, Akram
    Graff, Bernadette
    Fouassier, Jean-Pierre
    Rodeghiero, Giacomo
    Gualandi, Andrea
    Dumur, Frederic
    Cozzi, Pier Giorgio
    Lalevee, Jacques
    POLYMER CHEMISTRY, 2019, 10 (07) : 872 - 884
  • [3] Monocomponent Photoinitiators based on Benzophenone-Carbazole Structure for LED Photoinitiating Systems and Application on 3D Printing
    Liu, Shaohui
    Chen, Hong
    Zhang, Yijun
    Sun, Ke
    Xu, Yangyang
    Morlet-Savary, Fabrice
    Graff, Bernadette
    Noirbent, Guillaume
    Pigot, Corentin
    Brunel, Damien
    Nechab, Malek
    Gigmes, Didier
    Xiao, Pu
    Dumur, Frederic
    Lalevee, Jacques
    POLYMERS, 2020, 12 (06)
  • [4] Water-Soluble Visible Light Sensitive Photoinitiating System Based on Charge Transfer Complexes for the 3D Printing of Hydrogels
    Chen, Hong
    Vahdati, Mehdi
    Xiao, Pu
    Dumur, Frederic
    Lalevee, Jacques
    POLYMERS, 2021, 13 (18)
  • [5] In silico rational design by molecular modeling of new ketones as photoinitiators in three-component photoinitiating systems: application in 3D printing
    Sun, Ke
    Xu, Yangyang
    Dumur, Frederic
    Morlet-Savary, Fabrice
    Chen, Hong
    Dietlin, Celine
    Graff, Bernadette
    Lalevee, Jacques
    Xiao, Pu
    POLYMER CHEMISTRY, 2020, 11 (12) : 2230 - 2242
  • [6] In Silico Design of Nitrocoumarins as Near-UV Photoinitiators: Toward Interesting Opportunities in Composites and 3D Printing Technologies
    Abdallah, Mira
    Hijazi, Akram
    Graff, Bernadette
    Fouassier, Jean-Pierre
    Dumur, Frederic
    Lalevee, Jacques
    ACS APPLIED POLYMER MATERIALS, 2020, 2 (07): : 2890 - 2901
  • [7] Water-soluble bis-chalcone-based photoinitiators with long-wavelength absorption for radical polymerization and 3D printing
    Lu, Weineng
    Qu, Jinqing
    POLYMER CHEMISTRY, 2024, 15 (08) : 796 - 806
  • [8] Development of New High-Performance Biphenyl and Terphenyl Derivatives as Versatile Photoredox Photoinitiating Systems and Their Applications in 3D Printing Photopolymerization Processes
    Tomal, Wiktoria
    Pilch, Maciej
    Chachaj-Brekiesz, Anna
    Ortyl, Joanna
    CATALYSTS, 2019, 9 (10)
  • [9] General One-Pot Method for Preparing Highly Water-Soluble and Biocompatible Photoinitiators for Digital Light Processing-Based 3D Printing of Hydrogels
    Wang, Hui
    Zhang, Biao
    Zhang, Jianhong
    He, Xiangnan
    Liu, Fukang
    Cui, Jingjing
    Lu, Zhe
    Hu, Guang
    Yang, Jun
    Zhou, Zhe
    Wang, Runze
    Hou, Xingyu
    Ma, Luankexin
    Ren, Panyu
    Ge, Qi
    Li, Peng
    Huang, Wei
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (46) : 55507 - 55516
  • [10] New, highly versatile bimolecular photoinitiating systems for free-radical, cationic and thiol-ene photopolymerization processes under low light intensity UV and visible LEDs for 3D printing application
    Hola, Emilia
    Topa, Monika
    Chachaj-Brekiesz, Anna
    Pilch, Maciej
    Fiedor, Pawel
    Galek, Mariusz
    Ortyl, Joanna
    RSC ADVANCES, 2020, 10 (13) : 7509 - 7522