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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Preparation and characterization of self-electrical stimuli conductive gellan based nano scaffold for nerve regeneration containing chopped short spun nanofibers of PVDF/MCM41 and polyaniline/graphene nanoparticles: Physical, mechanical and morphological studies
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Preparation and characterization of self-electrical stimuli conductive gellan based nano scaffold for nerve regeneration containing chopped short spun nanofibers of PVDF/MCM41 and polyaniline/graphene nanoparticles: Physical, mechanical and morphological studies

机译:含有PVDF / MCM41和聚苯胺/石墨烯纳米粒子的断裂型纳米纤维的神经再生的自电刺激导电GellaN基于自电刺激的纳米支架的制备与表征:物理,机械和形态学研究

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摘要

Conductive self-electrical stimuli bioactive scaffolds could be used the potential for peripheral nerve regeneration with the maximum efficiency. To produce such conductive self-electrical stimuli bioactive scaffolds, chopped spun piezoelectric nanofibers of polyvinylidene fluoride/mesoporous silica nanoparticle (PVDF/MCM41) are prepared and incorporated in gellan/polyaniline/graphene (gellan/PAG) nanocomposites which have been previously prepared by incorporation of polyaniline/graphene (PAG) nanoparticles in gellan gel at 80 degrees C. Highly conductive binary doped polyaniline/graphene nanoparticles are prepared by chemical oxidative polymerization of aniline monomer using in-suite precipitation polymerization method in presence of graphene nanoparticles and sodium dodecyl sulfate. All intermediate and final products including spun PVDF/MCM41 nanofibers, PAG nanoparticles, and gellan-gelatin gel scaffolds containing PVDF/MCM41 nano spun fibers and PAG nanoparticles are characterized using different analysis methods. Chemical and structural analyses of PAG nanoparticles and PVDF/MCM41 nanofibers have been done using FTIR and XRD methods. The morphological structure of different samples is investigated using SEM. Morphological investigation and DLS results confirm fabrication of MCM41 nanoparticle with a completely spherical shape and the average size of 50 nm of which have been dispersed in electrospun PVDF nanofibers very well. Also, the preparation of PAG nanoparticle with high conductivity is verified with morphological and conductivity tests. MTT easy and biocompatibility test results indicate potential applicability of the prepared conductive self -stimuli nano-scaffold for nerve regeneration applications. (C) 2020 Elsevier B.V. All rights reserved.
机译:导电自电刺激生物活性支架可以最大限度地发挥周围神经再生的潜力。为了制造这种导电自电刺激生物活性支架,制备了聚偏氟乙烯/介孔二氧化硅纳米颗粒(PVDF/MCM41)的短切压电纳米纤维,并将其并入结冷胶/聚苯胺/石墨烯(结冷胶/PAG)纳米复合材料中。该复合材料之前是通过在结冷胶中加入聚苯胺/石墨烯(PAG)纳米颗粒在80℃下制备的。制备了高导电性的二元掺杂聚苯胺/石墨烯纳米颗粒在石墨烯纳米颗粒和十二烷基硫酸钠存在下,苯胺单体采用原位沉淀聚合法进行化学氧化聚合制备。所有中间产品和最终产品,包括PVDF/MCM41纳米纤维、PAG纳米颗粒和含有PVDF/MCM41纳米纤维和PAG纳米颗粒的结冷凝胶支架,均采用不同的分析方法进行表征。使用FTIR和XRD方法对PAG纳米颗粒和PVDF/MCM41纳米纤维进行了化学和结构分析。利用扫描电镜研究了不同样品的形态结构。形态学研究和DLS结果证实了MCM41纳米颗粒的制备是完全球形的,其平均尺寸为50nm,已很好地分散在电纺PVDF纳米纤维中。此外,还通过形貌和电导率测试验证了制备高导电性PAG纳米颗粒的可行性。MTT-easy和生物相容性测试结果表明,所制备的导电自刺激纳米支架在神经再生应用中具有潜在的适用性。(C) 2020爱思唯尔B.V.版权所有。

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