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Electrodeposition of chitosan/gelatinanosilver: A new method for constructing biopolymeranoparticle composite films with conductivity and antibacterial activity

机译:壳聚糖/明胶/纳米银的电沉积:构建具有导电性和抗菌活性的生物聚合物/纳米颗粒复合膜的新方法

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Electrodeposition of chitosan provides a controllable means to simultaneously assemble biological materials and nanoparticles for various applications. Here, we present a new method to construct biopolymeranoparticle composite films with conductivity and antibacterial activity by electrodeposition of chitosan/gelatinanosilver. Besides, this method can be employed to build biopolyrneranoparticle composite hydrogels or coatings on various electrodes or conductive substrates. We initially use a simple approach to prepare the aqueous nanosilver that can be well-dispersed in water. Then, the codeposition mixture containing chitosan, gelatin and nanosilver is prepared, and it can be electrodeposited onto different electrodes or conductive substrates in response to imposed electrical signals. After electrodeposition, it is found that the deposited hydrogels and their dried films are smooth and homogeneous due to the elimination of H-2 bubbles by addition of H2O2 in electrodeposition process. Importantly, the composite films are strong enough to completely and readily peel from the electrodes after they reacted with 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC), which can build a type of biopolymeranoparticle film for further applications. Furthermore, the electrodeposition technique is able to offer controllable and convenient method to construct the composite films with diverse shapes. The composite films display improved conductivity and in vitro antibacterial activity against Escherichia coli and Staphylococcus aureus, which may provide attractive applications in biomedical fields such as artificial muscles, skin biomaterials and neuroprosthetic implants. (C) 2015 Published by Elsevier B.V.
机译:壳聚糖的电沉积提供了一种可控的方法,可以同时组装生物材料和纳米颗粒,以用于各种应用。在这里,我们提出了一种通过电沉积壳聚糖/明胶/纳米银构建具有导电性和抗菌活性的生物聚合物/纳米颗粒复合膜的新方法。此外,该方法可用于在各种电极或导电基底上构建生物聚合物/纳米颗粒复合水凝胶或涂层。我们最初使用一种简单的方法来制备可以很好地分散在水中的水性纳米银。然后,制备包含壳聚糖,明胶和纳米银的共沉积混合物,并且可以根据施加的电信号将其电沉积到不同的电极或导电基材上。电沉积后,发现由于在电沉积过程中通过添加H2O2消除了H-2气泡,沉积的水凝胶及其干膜是光滑且均匀的。重要的是,复合膜足够坚固,可以在与1-乙基-3-(3-二甲基氨基丙基)碳二亚胺(EDC)反应后完全,轻松地从电极上剥离,该复合膜可以构建一种生物聚合物/纳米颗粒膜,用于进一步的应用。此外,电沉积技术能够提供可控且方便的方法来构造具有多种形状的复合膜。该复合膜对大肠杆菌和金黄色葡萄球菌显示出改善的导电性和体外抗菌活性,这可能在生物医学领域(如人造肌肉,皮肤生物材料和神经修复植入物)中提供有吸引力的应用。 (C)2015由Elsevier B.V.发布

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