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第 3 期               卓龙海,等:  轻质高强芳纶纳米纤维/聚酰亚胺复合气凝胶的制备及性能                                   ·487·


                 Science, 2019, 2019: 1-12.                    [25]  GUAN F L, AN F, YANG J, et al. Fiber-reinforced three-dimensional
            [17]  CHOI J Y, JIN S W, KIM D M, et al. Enhancement of the mechanical   graphene aerogels for electrically conductive epoxy composites with
                 properties of polyimide film by microwave irradiation[J]. Polymers   enhanced mechanical properties[J]. Chinese Journal of Polymer Science,
                 (Basel), 2019, 11(3): 477.                        2017, 35(11): 1381-1390.
            [18]  SMIRNOVA I, GURIKOV P. Aerogels in chemical engineering:   [26]  LI Z,  GONG  L L, CHENG X  D,  et al. Flexible silica aerogel
                 Strategies toward tailor-made  aerogels[J]. Annu Rev Chem Biomol   composites strengthened with aramid fibers and their thermal
                 Eng, 2017, 8: 307-334.                            behavior[J]. Materials & Design, 2016, 99: 349-355.
            [19]  ZHANG  Y, HUANG Z, RUAN B,  et al. Design and synthesis of   [27]  YANG B, WANG L, ZHANG M Y, et al. Fabrication, applications,
                 polyimide covalent organic frameworks[J]. Macromolecular Rapid   and prospects of aramid nanofiber[J]. Advanced Functional Materials,
                 Communications, 2020, 41(22): 2000402.            2020, 30(22): 2000186.
            [20]  CAROLINA S H, CHEN X Y, ORTIZ M L, et al. Linear and crosslinked   [28]  MA Z L, KANG S L, MA J Z, et al. Ultraflexible and mechanically
                 polyimide aerogels: Synthesis and characterization[J]. Journal  of   strong double-layered aramid nanofiber-Ti 3C 2T x MXene/silver nanowire
                 Materials Research and Technology, 2019, 8(3): 2638-2648.   nanocomposite papers for high-performance  electromagnetic
            [21]  ZHU Z X, YAO H J, WANG F, et al. Fiber reinforced polyimide aerogel   interference shielding[J]. ACS Nano, 2020, 14(7): 8368-8382.
                 composites with  high mechanical strength  for high temperature   [29]  WANG  L,  ZHANG M Y, YANG B,  et al. Highly compressible,
                 insulation[J]. Macromolecular Materials and Engineering, 2019,   thermally stable, light-weight, and robust aramid nanofibers/Ti 3C 2T x
                 304(5): 1800676.                                  MXene  composite aerogel for sensitive pressure sensor[J]. ACS
            [22]  JAMROZ E, KULAWIK P, KOPEL P. The effect of nanofillers on   Nano, 2020, 14(8): 10633-10647.
                 the functional properties of  biopolymer-based films: A review[J].   [30]  LIN J, BANG S H, MALAKOOTI M H, et al. Isolation of aramid
                 Polymers (Basel), 2019, 11(4): 675.               nanofibers for high strength and toughness polymer nanocomposites
            [23]  GELINEAU P, STEPIEŃ M, WEIGAND S, et al. Elastic properties   [J]. ACS Appl Mater Interfaces, 2017, 9(12): 11167-11175.
                 prediction of nano-clay reinforced polymer using multi-scale modeling   [31]  DONG C C, GUO P, YUAN Y, et al. Aramid nanomaterials of various
                 based on a multi-scale  characterization[J]. Mechanics of Materials,   morphologies: Preparation and mechanical property enhancement[J].
                 2015, 89: 12-22.                                  Front Chem, 2019, 7: 939.
            [24]  SASIDHARAN S, ANAND A.  Epoxy-based hybrid  structural   [32]  YANG B, WANG L, ZHANG M Y, et al. Timesaving, high-efficiency
                 composites with nanofillers: A review[J]. Industrial & Engineering   approaches to fabricate aramid nanofibers[J]. ACS Nano, 2019, 13(7):
                 Chemistry Research, 2020, 59(28): 12617-12631.    7886-7897.


            (上接第 441 页)                                        [69]  XU Z Y, ZHOU H, JIANG X D, et al. Facile synthesis of reduced
                                                                   graphene oxide/trimethyl chlorosilane-coated cellulose nanofibres
            [60]  XU Z Y, ZHOU H, TAN S C,  et al. Ultralight  super-hydrophobic   aerogel for oil absorption[J]. Iet Nanobiotechnology, 2017, 11(8):
                 carbon aerogels based on cellulose nanofibers/poly(vinyl alcohol)/   929-934.
                 graphene oxide (CNFs/PVA/GO) for highly effective oil-water   [70]  LIU L, KONG G, ZHU Y B, et al. Superhydrophobic graphene aerogel
                 separation[J]. Beilstein Journal of Nanotechnology, 2018, 9: 508-519.   beads for adsorption of oil and organic solvents via a convenient in
            [61]  BASKAKOV S A, BASKAKOVA Y V, KABACHKOV E N, et al.   situ sol-gel method[J]. Colloid and Interface Science Communications,
                 Superhydrophobic aerogel of polytetrafluoroethylene/graphene oxide   2021, 45: 100518.
                 composite[J]. High Energy Chemistry, 2019, 53(5): 407-412.   [71]  BO Y Q, YU A R, LIU H E, et al. Preparation of elastic graphene
            [62]  CHATTERJEE S, KE W T, LIAO Y C. Elastic nanocellulose/graphene   aerogel and its adsorption of oil[J].  Journal of Porous  Materials,
                 aerogel with excellent shape retention and oil absorption selectivity   2020, 28: 39-56.
                 [J]. Journal of the Taiwan Institute of Chemical Engineers, 2020, 111:   [72]  XU W L,  CHEN  S, ZHU Y N,  et al. Preparation of hyperelastic
                 261-269.                                          graphene/carboxymethyl cellulose composite aerogels  by ambient
            [63]  CHEN C Z, LI F F, ZHANG Y R, et al. Compressive, ultralight and   pressure drying and its adsorption applications[J]. Journal of Materials
                 fire-resistant lignin-modified graphene aerogels as recyclable absorbents   Science, 2020, 55: 10543-10557.
                 for oil and organic solvents[J]. Chemical Engineering Journal, 2018,   [73]  GE J, SHI L A, WANG Y C, et al. Joule-heated graphene-wrapped
                 350: 173-180.                                     sponge enables fast clean-up of viscous crude-oil spill[J].  Nature
            [64]  ZHOU  L J, XU Z Y. Ultralight, highly compressible, hydrophobic   Nanotechnology, 2017, 12(5): 434-440
                 and anisotropic lamellar carbon aerogels from graphene/polyvinyl   [74]  WANG K, WANG D Y, WANG M Z, et al. Functional photothermal
                 alcohol/cellulose nanofiber aerogel as oil removing absorbents[J].   sponges for efficient solar steam generation and accelerated cleaning
                 Journal of Hazardous Materials, 2019, 388: 121804.   of viscous crude-oil spill[J]. Solar Energy Materials and Solar Cells,
            [65]  XIA C B, LI  Y  B, FEI T,  et al.  Facile one-pot synthesis  of   2020, 204: 110203.
                 superhydrophobic reduced graphene oxide-coated polyurethane sponge   [75]  HUANG J K, YAN Z F. Adsorption mechanism of oil by resilient
                 at the presence of ethanol for  oil-water separation[J]. Chemical   graphene aerogels from oil-water emulsion[J]. Langmuir, 2018:
                 Engineering Journal, 2018, 345: 648-658.          1890-1898.
            [66]  DENG W, FANG Q, ZHOU X, et al. Hydrothermal self-assembly of   [76]  DONG X  C, CHEN J, MA Y  W,  et al. Superhydrophobic  and
                 graphene foams with controllable pore size[J]. RSC Advances, 2016,   superoleophilic hybrid foam of graphene and carbon  nanotube for
                 6(25): 20843-20849.                               selective removal of oils  or  organic solvents  from the surface of
            [67]  DIAO S, LIU H E, CHEN S, et al. Oil adsorption performance of   water[J]. Chemical Communications, 2012, 48(86): 10660-10662.
                 graphene aerogels[J]. Journal of Materials Science, 2020, 55(11):   [77]  WANG  C  C, YANG S D, MA  Q,  et al. Preparation of carbon
                 4578-4591.                                        nanotubes/graphene hybrid aerogel  and its application for the
            [68]  ZHOU  L J,  ZHAI S C, CHEN  Y M,  et al. Anisotropic cellulose   adsorption of organic compounds[J]. Carbon, 2017, 118: 765-771.
                 nanofibers/polyvinyl alcohol/graphene aerogels fabricated by directional   [78]  BI H C, XIE X, YIN K B, et al. Graphene: Spongy graphene as a
                 freeze-drying as effective oil adsorbents[J]. Polymers, 2019, 11:   highly efficient and recyclable sorbent for oils and organic solvents
                 712-720.                                          [J]. Advanced Functional Materials, 2012, 22(21): 4421-4425.
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