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Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity

机译:贻贝启发的各向异性纳米纤维素和银纳米粒子复合材料,具有改善的机械性能,导电性和抗菌活性

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Materials for wearable devices, tissue engineering and bio-sensing applications require both antibacterial activity to prevent bacterial infection and biofilm formation, and electrical conductivity to electric signals inside and outside of the human body. Recently, cellulose nanofibers have been utilized for various applications but cellulose itself has neither antibacterial activity nor conductivity. Here, an antibacterial and electrically conductive composite was formed by generating catechol mediated silver nanoparticles (AgNPs) on the surface of cellulose nanofibers. The chemically immobilized catechol moiety on the nanofibrous cellulose network reduced Ag + to form AgNPs on the cellulose nanofiber. The AgNPs cellulose composite showed excellent antibacterial efficacy against both Gram-positive and Gram-negative bacteria. In addition, the catechol conjugation and the addition of AgNP induced anisotropic self-alignment of the cellulose nanofibers which enhances electrical and mechanical properties of the composite. Therefore, the composite containing AgNPs and anisotropic aligned the cellulose nanofiber may be useful for biomedical applications.
机译:用于可穿戴设备,组织工程和生物传感应用的材料既需要抗菌活性以防止细菌感染和生物膜形成,也需要对人体内部和外部的电信号进行导电。近来,纤维素纳米纤维已经用于各种应用,但是纤维素本身既不具有抗菌活性也不具有导电性。在此,通过在纤维素纳米纤维的表面上生成邻苯二酚介导的银纳米颗粒(AgNP),形成了一种抗菌导电复合材料。化学固定在纳米纤维纤维素网络上的邻苯二酚部分还原了Ag +,从而在纤维素纳米纤维上形成了AgNP。 AgNPs纤维素复合材料对革兰氏阳性和革兰氏阴性细菌均显示出优异的抗菌效果。另外,邻苯二酚的缀合和AgNP的添加引起纤维素纳米纤维的各向异性自对准,这增强了复合材料的电气和机械性能。因此,包含AgNPs和各向异性排列的纤维素纳米纤维的复合材料可用于生物医学应用。

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