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通过木质纤维素纳米纤维处理的一维水性聚苯胺纳米结构:一种导电界面生物材料。

Aqueous Processable One-Dimensional Polypyrrole Nanostructured by Lignocellulose Nanofibril: A Conductive Interfacing Biomaterial.

机构信息

Laboratory of Natural Materials Technology, Faculty of Science and Engineering, Åbo Akademi Unversity, Henrikinkatu 2, Turku FI-20500, Finland.

Pharmaceutical Sciences Laboratory, Faculty of Science and Engineering, Åbo Akademi University, Tykistökatu 6A, Turku FI-20520, Finland.

出版信息

Biomacromolecules. 2023 Aug 14;24(8):3819-3834. doi: 10.1021/acs.biomac.3c00475. Epub 2023 Jul 12.

Abstract

One-dimensional (1D) nanomaterials of conductive polypyrrole (PPy) are competitive biomaterials for constructing bioelectronics to interface with biological systems. Synergistic synthesis using lignocellulose nanofibrils (LCNF) as a structural template in chemical oxidation of pyrrole with Fe(III) ions facilitates surface-confined polymerization of pyrrole on the nanofibril surface within a submicrometer- and micrometer-scale fibril length. It yields a core-shell nanocomposite of PPy@LCNF, wherein the surface of each individual fibril is coated with a thin nanoscale layer of PPy. A highly positive surface charge originating from protonated PPy gives this 1D nanomaterial a durable aqueous dispersity. The fibril-fibril entanglement in the PPy@LCNFs facilely supported versatile downstream processing, e.g., spray thin-coating on glass, flexible membranes with robust mechanics, or three-dimensional cryogels. A high electrical conductivity in the magnitude of several to 12 S·cm was confirmed for the solid-form PPy@LCNFs. The PPy@LCNFs are electroactive and show potential cycling capacity, encompassing a large capacitance. Dynamic control of the doping/undoping process by applying an electric field combines electronic and ionic conductivity through the PPy@LCNFs. The low cytotoxicity of the material is confirmed in noncontact cell culture of human dermal fibroblasts. This study underpins the promises for this nanocomposite PPy@LCNF as a smart platform nanomaterial in constructing interfacing bioelectronics.

摘要

一维(1D)导电聚吡咯(PPy)纳米材料是构建生物电子学与生物系统接口的有竞争力的生物材料。在使用木质纤维素纳米纤维(LCNF)作为结构模板的协同合成中,在 Fe(III)离子存在下,通过化学氧化吡咯,有利于吡咯在纳米纤维表面的受限表面聚合,聚合长度在亚微米和微米尺度范围内。它生成了 PPy@LCNF 的核壳纳米复合材料,其中每个纳米纤维的表面都涂覆有一层薄薄的纳米级 PPy 层。源自质子化 PPy 的高度正表面电荷赋予这种 1D 纳米材料持久的水分散性。PPy@LCNFs 中的纤维-纤维缠结易于支持多种下游处理,例如在玻璃上喷涂薄涂层、具有强大机械性能的柔性膜或三维冷冻凝胶。固体形式的 PPy@LCNFs 具有几到 12 S·cm 的高电导率。PPy@LCNFs 是电活性的,并表现出潜在的循环容量,包含大的电容。通过施加电场对掺杂/脱掺杂过程进行动态控制,通过 PPy@LCNFs 结合了电子和离子导电性。该材料的低细胞毒性在人皮肤成纤维细胞的非接触细胞培养中得到证实。这项研究为这种纳米复合材料 PPy@LCNF 作为构建接口生物电子学的智能平台纳米材料提供了依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0099/10428162/093cc36c7e2e/bm3c00475_0009.jpg

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