Page 121 - 《精细化工)》2023年第10期
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第 10 期                     吴奇霞,等:  明胶基静电纺丝复合纤维材料的研究进展                                   ·2199·


            [48]  LIU Y Y, LI Y, DENG L L, et al. Hydrophobic ethylcellulose/gelatin   [64]  GAO D  G, GUO  S H, ZHOU Y Y,  et al. Absorption-dominant,
                 nanofibers containing zinc oxide nanoparticles for antimicrobial   low-reflection multifunctional electromagnetic shielding material
                 packaging[J]. Journal of Agricultural and Food Chemistry, 2018,   derived  from hydrolysate of waste leather scraps[J].  ACS  Applied
                 66(36): 9498-9506.                                Materials & Interfaces, 2022, 14(33): 38077-38089.
            [49]  KARUPPANNAN S K, RAMALINGAM R, KHALITH S B M, et al.   [65]  GAO D G, GUO  S H, ZHOU  Y  Y,  et al. Hydrophobic, flexible
                 Copper oxide nanoparticles infused electrospun polycaprolactone/   electromagnetic interference shielding films derived from hydrolysate
                 gelatin scaffold as an antibacterial  wound dressing[J]. Materials   of waste leather scraps[J]. Journal of Colloid and Interface Science,
                 Letters, 2021, 294: 129787.                       2022, 613: 396-405.
            [50]  ZHENG Z  X,  ZHANG K H, WU  B,  et al. Green electrospun   [66]  DENG Z X, TAO J W, ZHANG W, et al. Effect of protein adsorption
                 nanocuprous oxide-poly(ethylene  oxide)-silk fibroin composite   on electrospun hemoglobin/gelatin-MWCNTs  microbelts modified
                 nanofibrous scaffolds for antibacterial dressings[J]. Journal of Applied   electrode: Toward electrochemical measurement of hydrogen peroxide
                 Polymer Science, 2019, 136(28): 47730.            [J]. Materials Chemistry and Physics, 2021, 257: 123827.
            [51]  AKTURK O,  KISMET K, YASTI A C,  et al. Collagen/gold   [67]  ZHANG X D, LI L F, OUYANG J, et al. Electroactive electrospun
                 nanoparticle nanocomposites: A potential skin wound healing   nanofibers for tissue engineering[J]. Nano Today, 2021, 39: 101196.
                 biomaterial[J]. Journal of Biomaterials Applications, 2016, 31(2):   [68]  SENCADAS V. Energy harvesting applications from poly (ε-caprolactone)
                 283-301.                                          electrospun membranes[J]. ACS Applied Polymer Materials, 2020,
            [52]  DING H X, CHENG Y Z, NIU X L, et al. Application of electrospun   2(6): 2105-2110.
                 nanofibers in bone, cartilage and osteochondral tissue engineering[J].   [69]  LIU Y, MENG F J, ZHOU Y T, et al. Graphene oxide films prepared
                 Journal of Biomaterials Science, Polymer  Edition, 2020, 32(4):   using gelatin nanofibers as wearable sensors for monitoring cardiovascular
                 536-561.                                          health[J]. Advanced Materials Technologies, 2019, 4(11): 1900540.
            [53]  GORGIEVA S, KOKOL V. Collagen-vs. gelatine-based biomaterials   [70]  KARIM A A, BHAT R. Fish gelatin: Properties, challenges, and
                 and their biocompatibility: Review and perspectives[J]. Biomaterials   prospects as an alternative to mammalian gelatins[J]. Food Hydrocolloids,
                 Applications for Nanomedicine, 2011, 2: 17-52.    2009, 23(3): 563-576.
            [54]  ZHANG Y Z, OUYANG H W, LIM C T, et al. Electrospinning of   [71]  HAN Y J,  HAN  Y F, ZHANG X  P,  et al. Fish gelatin based
                 gelatin fibers and gelatin/PCL composite fibrous scaffolds[J]. Journal   triboelectric nanogenerator for harvesting biomechanical energy and
                 of Biomedical Materials Research Part B: Applied Biomaterials,   self-powered sensing of human physiological signals[J]. ACS
                 2005, 72B(1): 156-165.                            Applied Materials & Interfaces, 2020, 12(14): 16442-16450.
            [55]  MOZAFFARI A, PARVINZADEH G M. Air plasma functionalization   [72]  NATH V A, VIJAYAKUMAR R, LEENA M M, et al. Co-electrospun-
                 of electrospun nanofibers for skin tissue engineering [J]. Biomedicines,   electrosprayed ethyl cellulose-gelatin  nanocomposite pH-sensitive
                 2022, 10(3): 617.                                 membrane for food quality applications[J]. Food Chemistry, 2022,
            [56]  LIAN M F, HAN Y, SUN B B, et al. A multifunctional electrowritten   394: 133420.
                 bi-layered scaffold for guided bone regeneration[J]. Acta Biomaterialia,   [73]  EBRAHIMI S, FATHI M, KADIVAR M. Production and characterization
                 2020, 118: 83-99.                                 of chitosan-gelatin nanofibers by nozzle-less electrospinning and
            [57]  RANGANATHAN S, BALAGANGADHARAN K, SELVAMURUGAN   their application to enhance edible film's properties[J]. Food
                 N. Chitosan and gelatin-based electrospun fibers  for bone tissue   Packaging and Shelf Life, 2019, 22: 100387.
                 engineering[J]. International Journal of Biological Macromolecules,   [74]  HAKKARAINEN  T, KOIVUNIEMI R, KOSONEN  M,  et al.
                 2019, 133: 354-364.                               Nanofibrillar cellulose wound dressing in skin graft donor site
            [58]  FARZAMFAR S, NASERI-NOSAR M, VAEZ A, et al. Neural tissue   treatment[J]. Journal of Controlled Release, 2016, 244: 292-301.
                 regeneration  by a gabapentin-loaded  cellulose acetate/gelatin wet-   [75]  SHAN Y H, PENG L H, LIU X, et al. Silk fibroin/gelatin electrospun
                 electrospun scaffold[J]. Cellulose, 2018, 25(2): 1229-1238.   nanofibrous dressing functionalized with astragaloside  Ⅳ induces
            [59]  ZHANG L, DONG Y S, ZHANG N, et al. Potentials of sandwich-   healing and anti-scar effects on burn wound[J]. International Journal
                 like chitosan/polycaprolactone/gelatin scaffolds for  guided tissue   of Pharmaceutics, 2015, 479(2): 291-301.
                 regeneration membrane[J]. Materials Science and Engineering: C,   [76]  HE S R, JIANG  L, LIU J,  et al. Electrospun  PVA/gelatin based
                 2020, 109: 110618.                                nanofiber membranes with synergistic antibacterial performance[J].
            [60]  HAYAT  U, RAZA  A, BILAL  M,  et al. Biodegradable polymeric   Colloids and Surfaces A: Physicochemical and Engineering Aspects,
                 conduits: Platform materials for  guided nerve regeneration and   2022, 637: 128196.
                 vascular tissue engineering[J]. Journal of Drug Delivery Science and   [77]  XIAO B Q, HUANG Q W, CHEN H X, et al. A fractal model for
                 Technology, 2022, 67: 103014.                     capillary flow through a single tortuous capillary with roughened
            [61]  WANG Z X, WANG H, XIONG J J, et al. Fabrication and in vitro   surfaces in fibrous porous media[J]. Fractals, 2021, 29(1): 2150017.
                 evaluation  of PCL/gelatin hierarchical scaffolds based  on melt   [78]  XIAO B Q,  ZHANG  Y  D, WANG Y,  et al. A fractal  model for
                 electrospinning writing and solution electrospinning for bone   Kozeny-Carman constant and dimensionless permeability of fibrous
                 regeneration[J]. Materials Science  and Engineering: C, 2021, 128:   porous media with roughened surfaces[J]. Fractals, 2019, 27(7):
                 112287.                                           1950116.
            [62]  VINEIS C, MAYA I C, MOWAFI S,  et al. Synergistic effect of   [79]  KADAM V. Multifunctional air filtration for respiratory protection
                 sericin and keratin in gelatin based nanofibers for  in vitro   using electrospun nanofibre membrane[D]. Melbourne Victoria:
                 applications[J]. International Journal of Biological Macromolecules,   RMIT University, 2018.
                 2021, 190: 375-381.                           [80]  SOUZANDEH H,  WANG Y, ZHONG  W H. “Green” nano-filters:
            [63]  PAN Z Y (潘朝莹), MA J Z (马建中), ZHANG W B (张文博), et al.   Fine nanofibers of natural protein for high efficiency filtration of
                 Application of flexible conductive polymer composites in strain   particulate pollutants and toxic gases[J]. RSC Advances, 2016,
                 sensors[J]. Progress in Chemistry (化学进展), 2020, 32(10): 1592-1607.   6(107): 105948-105956.
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