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首页> 外文期刊>RSC Advances >Mussel-inspired nano-silver loaded layered double hydroxides embedded into a biodegradable polymer matrix for enhanced mechanical and gas barrier properties
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Mussel-inspired nano-silver loaded layered double hydroxides embedded into a biodegradable polymer matrix for enhanced mechanical and gas barrier properties

机译:贻贝启发的纳米银负载层状双氢氧化物嵌入可生物降解的聚合物基质中,以增强机械和气体阻隔性能

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In this paper, a facile, green and mussel-inspired method is presented to prepare silver loaded layered double hydroxides (Ag-LDHs@PDA and Ag-LDHs@TA–Fe( III )) using a pre-synthesis polydopamine (PDA)/tannic acid (TA)–Fe( III ) layer as a nanoscale guide and PDA/TA itself as a reducing reagent to form uniform silver nanoparticles (AgNPs) on the surface of modified LDHs. Meanwhile, another kind of LDH, Ag-LDHs(PVP), was prepared via the direct reduction of the precursor [Ag(NH _(3) ) _(2) ] ~(+) with polyvinyl pyrrolidone (PVP). And three kinds of Ag-LDHs/poly(ε-caprolactone) (PCL) nanocomposite were prepared by blending Ag-LDHs and pure PCL via a solution casting method to obtain homogeneous films. It is shown that the obtained AgNPs are distributed on the LDH surfaces uniformly. And the high loading and medium size of the AgNPs present in Ag-LDHs(PVP) give it the best antibacterial properties. However, compared with Ag-LDHs(PVP), the better dispersibilities of Ag-LDHs@PDA and Ag-LDHs@TA–Fe( III ) contribute to the greater aspect ratios of Ag-LDHs in the matrices, resulting in an increase in the number of tortuous paths for gas diffusion. Meanwhile, Ag-LDHs@PDA and Ag-LDHs@TA–Fe( III ) have stronger interactions with the PCL matrix, which is favorable for the existence of less interface defects in the matrix, resulting in an improvement in the mechanical and gas barrier properties. Therefore, mussel-inspired antibacterial Ag-LDHs/PCL nanocomposites show preferable mechanical and gas barrier properties.
机译:本文提出了一种简便,绿色和贻贝启发的方法,采用合成前的聚多巴胺(PDA)/来制备载银的层状双氢氧化物(Ag-LDHs @ PDA和Ag-LDHs @ TA-Fe(III)/单宁酸(TA)–Fe(III)层作为纳米级指导,而PDA / TA本身作为还原剂,在改性LDH的表面上形成均匀的银纳米颗粒(AgNP)。同时,通过用聚乙烯吡咯烷酮(PVP)直接还原前体[Ag(NH_(3)__(2)]〜(+),制备了另一种LDH,即Ag-LDHs(PVP)。并通过溶液流延法将Ag-LDHs与纯PCL混合,制备了三种Ag-LDHs /聚ε-己内酯(PCL)纳米复合材料。结果表明,所得AgNPs均匀分布在LDH表面。 Ag-LDHs(PVP)中存在的高负载量和中等大小的AgNP使其具有最佳的抗菌性能。但是,与Ag-LDHs(PVP)相比,Ag-LDHs @ PDA和Ag-LDHs @ TA-Fe(III)的分散性更好,导致Ag-LDHs在基质中的纵横比更大,从而导致气体扩散的曲折路径数。同时,Ag-LDHs @ PDA和Ag-LDHs @ TA-Fe(III)与PCL基体的相互作用更强,这有利于基体中界面缺陷的减少,从而改善了机械和气体阻隔性属性。因此,贻贝启发的抗菌Ag-LDHs / PCL纳米复合材料表现出较好的机械和气体阻隔性能。

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