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·1848·                            精细化工   FINE CHEMICALS                                 第 40 卷

                 retardant epoxy nanocomposites[J].  Acta Polymerica Sinica, 2015,   Journal of Applied Polymer Science, 2020, 137(4): 48316.
                 (11): 1344-1352.                              [26]  JIANG L F,  LU Z C, KONG X  M,  et al. Surface  modification of
            [14]  WANG L, WANG N X, YANG H  Y. Facile fabrication of mixed   colloidal polymer  particles and  its effect on cement hydration[J].
                 matrix membranes from simultaneously polymerized hyperbranched   Journal of the Chinese Ceramic Society, 2017, 45(5): 601-607.
                 polymer/modified  graphene  oxide for MTBE/MeOH separation[J].   [27]  BLANTON T N, MAJUMDAR  D. Characterization of X-ray
                 Journal of Membrance Science, 2018, 559: 8-18.    irradiated  graphene oxide coatings using X-ray diffraction, X-ray
            [15]  HU R R, ZHANG R J, HE Y J,  et al. Graphene oxide-in-polymer   photoelectron spectroscopy, and atomic force microscopy[J]. Powder
                 nano filtration membranes with enhanced permeability by interfacial   Diffraction, 2013, 28(2): 68-71.
                 polymerization[J]. Journal of Membrance Science, 2018, 564: 813-   [28]  MARCANO D C, KOSYNKIN D  V, BERLIN J M. Imroved
                 819.                                              synthesis of graphene oxide[J]. ACS Nano, 2010, 4: 4806-4814.
            [16]  CRUZAGUILAR A, NAVARRORODRIGUEZ D, PEREZCAMACHO   [29]  LU Z Y, HOU D H, HANIF A, et al. Comparative evaluation on the
                 O, et al. High-density polyethylene/graphene oxide nanocomposites   dispersion and stability of graphene oxide in water and cement pore
                 prepared  via in situ polymerization: Morphology, thermal, and   solution by incorporating silica fume[J]. Cement and Concrete
                 electrical properties[J]. Materials Today Communications, 2018, 16:   Composites, 2018, 94: 33-42.
                 232-241.                                      [30]  LIU J T, FU J L, YANG Y, et al. Study on dispersion, mechanical and
            [17]  PENG C, HU W B, ZHOU Y T, et al. Intracellular imaging with a   microstructure properties of cement paste incorporating graphene
                 graphene-based fluorescent probe[J]. Small, 2010, 15: 1686-1692.   sheets[J]. Construction and Building Materials, 2019, 199: 1-11.
            [18]  HU H T, WANG X B, WANG J C, et al. Preparation and properties   [31]  ALAFOGIANNI P, DASSIONS K, FARMAKI S,  et al. On the
                 of graphene nanosheets-polystyrene nanocomposites via in situ emulsion   efficiency of UV-Vis spectroscopy in assessing the dispersion quality in
                 polymerization[J]. Chemical Physics Letters, 2010, 484(4/5/6): 247-   sonicated aqueous suspensions of carbon nanotubes[J]. Colloids and
                 253.                                              Surfaces A: Physicochemical and Engineering Aspects, 2016, 495:
            [19]  DESHMUKH K, AHAMED M B, SANKARAN S, et al. Studies on   118-124.
                 the  mechanical,  morphological and electrical properties of highly   [32]  YU J R, GROSSIORD N, KONING C E,  et al. Controlling the
                 dispersible graphene oxide reinforced polypyrrole and polyvinylalcohol   dispersion  of multi-wall carbon  nanotubes in aqueous  surfactant
                 blend composites[J]. Materials  Today: Proceedings, 2018, 5(2):   solution[J]. Carbon, 2007, 45: 618-623.
                 8744-8752.                                    [33]  POORSARGOL M, ALIMOHAMMADIAN M, SOHRABI B, et al.
            [20]  TIWARI S K, HATUI G, ORAON R, et al. Mixing sequence driven   Dispersion of graphene using surfactant mixtures: Experimental and
                 controlled dispersion of graphene oxide in PC/PMMA blend   molecular dynamics simulation studies[J]. Applied Surface Science,
                 nanocomposite and its effect on thermo-mechanical properties[J].   2019, 464: 440-450.
                 Current Applied Physics, 2017, 17: 1158-1168.   [34]  ZHANG F L, LI S, ZHANG Q, et al. Adsorption of different types of
            [21]  SHARMA R, MAHTO V, VUTHALURU H. Synthesis of PMMA/   surfactants on graphene oxide[J]. Journal  of Molecular Liquids,
                 modified graphene oxide nanocomposite pour point depressant and   2019, 276: 338-346.
                 its effect on the flow properties of Indian waxy crude oil[J]. Fuel,   [35]  YOSHIOKA K, SAKAI E, DAIMON M. Role of steric hindrance in
                 2019, 235: 1245-1259.                             the performance of superplasticizers for concrete[J]. Journal of the
            [22]  ZHANG L Y, TU S H, WANG H T, et al. Preparation of polymer/   American Ceramic Society, 1997, 80(10): 2667-2671.
                 graphene oxide nanocomposites by a two-step strategy composed of   [36]  YOSHIOKA K, TAZAWA E, KAWAI K, et al. Adsorption characteristics
                 in situ polymerization and melt processing[J]. Composites Science   of superplasti cizers on cement component minerals[J]. Cement and
                 and Technology, 2018, 154: 1-7.                   Concrete Research, 2002, 32: 1507-1513.
            [23]  LYU S H, DENG L J, YANG  W Q,  et al. Fabrication  of   [37]  SHANG Y, ZHANG D, YANG C, et al. Effect of graphene oxide on
                 polycarboxylate/graphene oxide nanosheet composites by copolymerization   the rheological properties of cement pastes[J]. Construction and
                 for reinforcing and toughening cement composites[J]. Cement and   Building Materials, 2015, 96: 20-28.
                 Concrete Composites, 2016, 66: 1-9.           [38]  ZHAO L, GUO X L, GE C, et al. Investigation of the effectiveness
            [24]  GAO D G (高党国), MA Y J (马宇娟). Preparation and properties of   of PC@GO on the reinforcement for cement composites[J].
                 copolymer of graphen oxide and monomers of polycarboxylate   Construction and Building Materials, 2016, 113: 470-478.
                 superplasticizer[J]. Fine Chemicals (精细化工), 2015, 32(1): 103-107.   [39]  CHUAH S, LI W G, CHEN S J, et al. Investigation on dispersion of
            [25]  GAO R J, YAO Y, WANG L, et al. Fabrication and characterization   graphene oxide in cement composite using  different  surfactant
                 of graphene oxide modified polycarboxylic by in situ polymerization[J].   treatments[J]. Construction and Building Materials, 2018, 161: 519- 527.





            (上接第 1825 页)                                       [23]  WANG J, LI M, WANG C, et al. Effect of extrusion processing and
            [19]  MNLA B, BAO Z, YING X, et al. Effects of debranching and repeated   addition of purple sweet potatoes on the structural properties and in
                 heat-moisture treatments on structure, physicochemical  properties   vitro digestibility of extruded rice[J]. Food & Function, 2021, 12(2):
                 and in vitro digestibility of wheat starch[J]. Food Chemistry, 2019,   739-746.
                 294: 440-447.                                 [24]  LIU R, SHI C, SONG Y, et al. Impact of oligomeric procyanidins on
            [20]  YU X,  ZHANG J, WANG L,  et al. Changes  in  physicochemical   wheat gluten microstructure and physicochemical properties[J]. Food
                 properties and structural characteristics of rice starch during extrusion   Chemistry, 2018, 260(15): 37-43.
                 processing: The role of glutelin and different extrusion zones[J].   [25]  QI M M (戚明明), PENG H H (彭慧慧), SONG J L (宋佳琳), et al.
                 Innovative Food Science & Emerging Technologies, 2022, 82: 103163.   Effects of extrusion and enzymatic hydrolysis on the in vitro starch
            [21]  KRISTIAWAN M,  MICARD V,  MALADIRA P,  et al. Multi-scale   digestibility, protein structure and rheological properties of pea
                 structural changes of starch and proteins during pea flour extrusion   flour[J]. Food Science (食品科学), 2022, 43(1): 76-82.
                 [J]. Food Research International, 2018, 108: 203-215.   [26]  WANG  L S, DUAN Y M, TONG  L F,  et al. Insights into the
            [22]  ZHANG Y, LIU  W, LIU C,  et al. Retrogradation behaviour of   interaction mechanism of glutelin and rice starch during extrusion
                 high-amylose rice  starch prepared  by improved extrusion cooking   processing: The role of specific mechanical energy[J]. Food Chemistry,
                 technology[J]. Food Chemistry, 2014, 158: 255-261.   2023, 405: 134850.
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