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Ultracompliant Hydrogel-Based Neural Interfaces Fabricated by Aqueous-Phase Microtransfer Printing

机译:通过水相微转移印刷制造的超顺从的基于水凝胶的神经界面

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摘要

Hydrogel-based electronics are ideally suited for neural interfaces because they exhibit ultracompliant mechanical properties that match that of excitable tissue in the brain and peripheral nerve. Hydrogel-based multielectrode arrays (MEAs) can conformably interface with tissues to minimize inflammation and improve the reliability to enhance signal transduction. However, MEA substrates composed of swollen hydrogels exhibit low toughness and poor adhesion when laminated on the tissue surface and also present incompatibilities with processes commonly used in MEA fabrication. Here, a strategy to fabricate an ultracompliant MEA is described based on aqueous-phase transfer printing. This technique employs redox active adhesive motifs in hygroscopic polymer precursors that simultaneously form hydrogels through sol-gel phase transitions and bond to materials in the underlying microelectronic structures. Specifically, in situ gelation of four-arm-polyethylene glycol-grafted catechol [PEG-Dopa](4) hydrogels induced by oxidation using Fe3+ produces conformal adhesive contact with the underlying MEA, robust adhesion to electronic sub-structures, and rapid dissolution of water-soluble sacrificial release layers. MEAs are integrated on hydrogel-based substrates to produce free-standing ultracompliant neural probes, which are then laminated to the surface of the dorsal root ganglia in feline subjects to record single-unit neural activity.
机译:基于水凝胶的电子设备非常适合神经接口,因为它们显示出与大脑和周围神经中的可兴奋组织相匹配的超柔顺机械性能。基于水凝胶的多电极阵列(MEA)可以与组织适形地接触,以最大程度地减少炎症并提高可靠性以增强信号传导。然而,由溶胀的水凝胶组成的MEA基材当层压在组织表面上时表现出低韧性和差的粘附性,并且还与MEA制造中常用的工艺不相容。在此,描述基于水相转移印刷的制造超顺应性MEA的策略。该技术在吸湿性聚合物前体中采用氧化还原活性粘合剂基序,该基体通过溶胶-凝胶相变同时形成水凝胶并键合至底层微电子结构中的材料。具体来说,使用Fe3 +氧化诱导的四臂聚乙二醇接枝儿茶酚[PEG-Dopa](4)水凝胶的原位凝胶化可产生与下层MEA的共形胶粘剂接触,对电子亚结构的牢固粘合,以及快速溶解水溶性牺牲释放层。 MEAs集成在基于水凝胶的基质上,以产生独立的超顺应性神经探针,然后将其层压到猫科动物的背根神经节表面以记录单单位神经活动。

著录项

  • 来源
    《Advanced Functional Materials》 |2018年第29期|1801059.1-1801059.10|共10页
  • 作者单位

    Carnegie Mellon Univ, Dept Mat Sci & Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

    Carnegie Mellon Univ, Dept Elect & Comp Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

    Carnegie Mellon Univ, Dept Mat Sci & Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

    Univ Pittsburgh, Dept Phys Med & Rehabil, 3520 Fifth Ave,Suite 300, Pittsburgh, PA 15213 USA;

    Univ Pittsburgh, Dept Phys Med & Rehabil, 3520 Fifth Ave,Suite 300, Pittsburgh, PA 15213 USA;

    Carnegie Mellon Univ, Dept Mat Sci & Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

    Carnegie Mellon Univ, Dept Elect & Comp Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

    Univ Pittsburgh, Dept Phys Med & Rehabil, 3520 Fifth Ave,Suite 300, Pittsburgh, PA 15213 USA;

    Carnegie Mellon Univ, Dept Mat Sci & Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    adhesion; electrodes; hydrogels; neural interface;

    机译:附着力;电极;水凝胶;神经界面;

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