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·720·                             精细化工   FINE CHEMICALS                                 第 38 卷

                 based on thiol-ene  click reaction[J]. Progress in Organic  Coatings,   near-infrared(NIR) photoinitiating systems operating under low light
                 2016, 90: 21-27.                                  intensity and in the presence of oxygen[J]. Macromolecules, 2018,
            [5]   ROHIT S, JOANNA W, JUSTYNA W K, et al. Fluorinated bis-GMA   51(4): 1314-1324.
                 as potential monomers for dental restorative composite materials[J].   [24]  WANG S W, LIU J, FENG G X, et al. NIR-Ⅱ excitable conjugated
                 European Polymer Journal, 2017, 90: 334-343.      polymer dots with bright NIR-Ⅰ emission for  deep  in vivo two-
            [6]   IKEMURA K, ENDO  T. A review of the development  of radical   photon brain imaging through intact skull[J]. Advanced  Functional
                 photopolymerization initiators used for designing light-curing dental   Materials, 2019, 29(15): 1808365.
                 adhesives and resin composites[J]. Dental Materials Journal, 2010,   [25]  HAIFAA M, BERNADETTE G, FRÉDÉRIC D, et al. NIR sensitizer
                 29(5): 481-501.                                   operating under long wavelength(1064 nm) for free radical
            [7]   RAMAKRISHNA  S, MAYER J, WINTERMANTEL  E,  et al.   photopolymerization  processes[J].  Macromolecular  Rapid
                 Biomedical applications of polymer-composite materials: A review[J].   Communications, 2020, 41(15): 2000289.
                 Composites Science and Technology, 2001, 61(9): 1189-1224.     [26]  LI Z Q, CHEN H, WANG C, et al. Efficient photopolymerization of
            [8]   NORBERT M, THOMAS H. New polymer-chemical developments   thick  pigmented systems using upconversion  nanoparticles-assisted
                 in clinical dental  polymer  materials: Enamel-dentin adhesives and   photochemistry[J]. Polymer Chemistry, 2018, 56(9): 994-1002.
                 restorative composites[J]. Polymer Chemistry, 2012, 50(21): 4369-4402.     [27]  LIU R, CHEN H, LI Z Q, et al. Extremely deep photopolymerization
            [9]   SAMUEL  C L, ROBERT L, JÜRGEN S,  et al. Polymers for 3D   using  upconversion particles as internal lamps[J]. Polymer
                 printing and customized additive manufacturing[J]. Chemical Review,   Chemistry, 2016, 7(14): 2439-2592.
                 2017, 117(15): 10212-10290.                   [28]  MASOUME  K  D, SAEED B, MEHDI G,  et al. NIR  induced
            [10]  ZHANG J, XIAO P. 3D printing of photopolymers[J]. Polymer   photopolymerization of acrylate-based composite containing
                 Chemistry, 2018, 9(13): 1530-1540.                upconversion particles as an internal  miniaturized UV sources[J].
            [11]  PANG S S, LI G Q, DWAYNE J H, et al. Fast joining of composite   Progress in Organic Coatings, 2017, 104: 97-103.
                 pipes  using UV curing  FRP composites[J]. Polymer Composites,   [29]  MENG H M, ZHAO D, LI N, et al. Agraphene quantum dot-based
                 2004, 25(3): 298-306.                             multifunctional two-photon nanoprobe for the detection and imaging
            [12]  JERRY A P, LI G Q, PANG S S, et al. Light intensity effect on UV   of intracellular giutathione and enhanced photodynamic therapy[J].
                 cured FRP coupled composite pipe joints[J]. Composite Structures,   Analyst, 2018, 143(20): 4967-4973.
                 2004, 64(3/4): 539-546.                       [30]  POORIA L, GURVINDER S, CHRISTINA M V, et al. Two-photon
            [13]  FRANF B, ROMAN F, KONSTANZE C, et al. Nano/micro particle   dual-emissive carbon dot-based probe: Deep-tissue imaging and
                 hybrid composites  for  scratch and abrasion resistant polyacrylate   ultrasensitive sensing of intracellular ferric ions[J]. ACS Applied
                 coatings[J]. Macromolecular Materials and Engineering, 2006,   Materials & Interfaces, 2020, 12(16): 18395-18406.
                 291(5): 493-498.                              [31]  WANG B C, CHEN J, CLIFF K, et al. 3D-printed repeating re-entrant
            [14]  KARDAR P, EBRAHIMI M, BASTANI S,  et al. Using mixture   topography to achieve on-demand wettability and separation[J]. ACS
                 experimental design to study the effect of  multifunctional acrylate   Applied Materials & Interfaces, 2020, 12: 35725-35730.
                 monomers on UV cured epoxy acrylate resins[J]. Progress in Organic   [32]  FARBOD M, SAEED B, MORTEZA G S. Studying the effect of
                 Coatings, 2009, 64(1): 74-80.                     hyperbranched polymer  modification  on the  kinetics of  curing
            [15]  MAJID M, SAEED B, XAVIER A, et al. UV-curable turbid systems:   reactions and physical/mechanical properties of UV-curable coatings[J].
                 Two-flux kubelka-munk approach[J]. Progress in Organic Coatings,   Progress in Organic Coatings, 2016, 90: 187-199.
                 2018, 115: 65-73.                             [33]  HUANG R J, JIANG Q G, WU H D, et al. Fabrication of complex
            [16]  MUSTAFA M D,  GERHARD  W.  Challenges in the preparation of   shaped ceramic parts with surface-oxidized Si 3N 4 powder via digital
                 optical polymer composites with  nanosized pigment particles: A   light processing  based stereolithography method[J]. Ceramics
                 review on recent efforts[J]. Macromolecular Materials and Engineering,   International, 2019, 45(4): 5158-5162.
                 2012, 297(9): 838-863.                        [34]  ANNA  W M, PAWEL F, MIKOLAJ S. Influence of core-shell
            [17]  JIN J K, HONG J, YU S, et al. Deep-red-fluorescent zinc probe with   structure on the cure depth in photopolymerizable alumina dispersion[J].
                 a membrane-targeting cholesterol unit[J]. Inorganic Chemistry, 2020,   Applied Ceramic Technology, 2019, 17(1): 248-254.
                 59: 11562-11576.                              [35]  MARIEM B Z, MAXIMILIAN M, CHRISTOPH P F, et al. A low
            [18]  JASON Y  C L, YU Y, JIN G,  et al.  Establishing empirical design   migration phosphine to overcome the oxygen inhibition in new high
                 rules of nucleic  acid templates for synthesis of silver nanoclusters   performance photoinitiating systems for  photocurable dental type
                 with tunable photoluminescence and functionalities towards targeted   resins[J]. Polymer International, 2016, 66(4): 504-511.
                 bioimaging applications[J]. Nanoscale Advances, 2020, 2(9): 3921-   [36]  LIAO W, XU C, WU X, et al. Photobleachable cinnamoyl dyes for
                 3932.                                             radical visible photoinitiators[J]. Dyes and Pigments, 2020, 178: 108350.
                                             3+
            [19]  SONG F M. Novel orange-red emitting Sm -doped Bi 4Sr 3Te 5O 19   [37]  MORITZ M, PATRICK K, SERGEJ N, et al. Acylstannanes: Cleavable
                 phosphors with high color purity for white light-emitting diodes[J].   and highly reactive photoinitiators for radical photopolymerization at
                 Journal of Materials Science: Materials in Electronics, 2020, 31:   wavelengths above 500 nm with excellent photobleaching behavior[J].
                 12417-12426.                                      Angewandte Chemie International Edition, 2018, 57(37): 12146-
            [20]  MASOUME K  D, SAEED B, MEHDI  G,  et al. Down-conversion   12150.
                 particles as internal UV-source assist in UV-curing systems:Physical   [38]  MARIEM B Z, JULIE K, CHRISTOPH P F, et al. Silyl glyoxylates
                 and mechanical properties of UV-curable micro-composites[J].   as a new class of high performance photoinitiators:Blue led induced
                 Progress in Organic Coatings, 2018, 122: 263-269.     polymerization of methacrylates in thin and films[J]. Macromolecules,
            [21]  FU H Y, QIU Y Z, YOU J,  et al. Photopolymerization of acrylate   2017, 50(17): 6911-6923.
                 resin and ceramic suspensions with benzylidene ketones under blue/   [39]  CHEN X H (陈新洪), LIU Z X (刘志兴). Ultraviolet-thermal curable
                 green led[J]. Polymer, 2019, 184: 121841.         coating: CN102234479A[P]. 2011-11-09.
            [22]  MARGARITA P S, MARIA Y Z, MAXIM A B, et al. A blue to red   [40] LI T(李涛), LI H L(李会录), QI X H(祁向花), et al. Preparation
                 light sensitive photoinitiating systems based on 3, 5-di-tert-butyl-o-   and characterization of UV-heat dual curing adhesive for voice coil
                 benzoquinone derivatives for  free radical polymerization[J].   motor bonding[J]. Insulating Materials(绝缘材料), 2020, 53(6): 1-7.
                 European Polymer Journal, 2020, 127(15): 109573.
            [23]  BONARDI A H, DUMUR F, GRANT T M, et al. High performance                    (下转第 735 页)
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