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Conductive elastomer composites for fully polymeric, flexible bioelectronics

机译:用于完全聚合物,柔性生物电体的导电弹性体复合材料

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Flexible polymeric bioelectronics have the potential to address the limitations of metallic electrode arrays by minimizing the mechanical mismatch at the device-tissue interface for neuroprosthetic applications. This work demonstrates the straightforward fabrication of fully organic electrode arrays based on conductive elastomers (CEs) as a soft, flexible and stretchable electroactive composite material. CEs were designed as hybrids of polyurethane elastomers (PU) and poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS), with the aim of combining the electrical properties of PEDOT:PSS with the mechanical compliance of elastomers. CE composites were fabricated by solvent casting of PEDOT:PSS dispersed in dissolved PU at different conductive polymer (CP) loadings, from 5 wt% to 25 wt%. The formation of PEDOT:PSS networks within the PU matrix and the resultant composite material properties were examined as a function of CP loading. Increased PEDOT:PSS loading was found to result in a more connected network within the PU matrix, resulting in increased conductivity and charge storage capacity. Increased CP loading was also determined to increase the Young's modulus and reduce the strain at failure. Biological assessment of CE composites showed them to mediate ReNcell VM human neural precursor cell adhesion. The increased stiffness of CE films was also found to promote neurite outgrowth. CE sheets were directly laser micromachined into a functional array and shown to deliver biphasic waveforms with comparable voltage transients to Pt arrays in in vitro testing.
机译:柔性聚合物生物电体能器通过最小化用于神经高原应用的器件组织界面处的机械失配来解决金属电极阵列的限制。该工作证明了基于导电弹性体(CES)的完全有机电极阵列的直接制造,作为软,柔性和可伸缩的电活性复合材料。设计CES被设计为聚氨酯弹性体(PU)和聚(3,4-亚乙二氧基噻吩):聚苯乙烯磺酸盐(PEDOT:PSS)的杂种,目的是将PEDOT的电性能与弹性体的机械顺应组合。 Ce复合材料由PEDOT的溶剂浇铸制成:PSS分散在不同导电聚合物(CP)载荷的溶解PU中,从5wt%至25wt%。 PUET的形成:PU基质内的PSS网络和所得复合材料特性被检查为CP负载的函数。增加了PEDOT:PSS加载被发现导致PU矩阵内的更连接的网络,导致导电性和电荷存储容量增加。也确定增加的CP负荷以增加杨氏模量并减少失效时的应变。 CE复合材料的生物学评估显示它们介导Rencell VM人神经前体细胞粘附。还发现CE薄膜的刚度增加,促进神经沸石的过度生长。 CE纸张被直接激发到功能阵列中,并显示为在体外测试中以可比电压瞬变提供双相波形。

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