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用于柔性生物电子学的、采用晶须状金纳米片的高导电性可拉伸水凝胶纳米复合材料。

Highly Conductive and Stretchable Hydrogel Nanocomposite Using Whiskered Gold Nanosheets for Soft Bioelectronics.

作者信息

Lim Chaehong, Lee Seunghwan, Kang Hyejeong, Cho Ye Seul, Yeom Da-Hae, Sunwoo Sung-Hyuk, Park Chansul, Nam Seonghyeon, Kim Jeong Hyun, Lee Seung-Pyo, Kim Dae-Hyeong, Hyeon Taeghwan

机构信息

Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul, 08826, Republic of Korea.

School of Chemical and Biological Engineering, and Institute of Chemical Processes, Seoul National University, Seoul, 08826, Republic of Korea.

出版信息

Adv Mater. 2024 Sep;36(39):e2407931. doi: 10.1002/adma.202407931. Epub 2024 Aug 11.

Abstract

The low electrical conductivity of conductive hydrogels limits their applications as soft conductors in bioelectronics. This low conductivity originates from the high water content of hydrogels, which impedes facile carrier transport between conductive fillers. This study presents a highly conductive and stretchable hydrogel nanocomposite comprising whiskered gold nanosheets. A dry network of whiskered gold nanosheets is fabricated and then incorporated into the wet hydrogel matrices. The whiskered gold nanosheets preserve their tight interconnection in hydrogels despite the high water content, providing a high-quality percolation network even under stretched states. Regardless of the type of hydrogel matrix, the gold-hydrogel nanocomposites exhibit a conductivity of ≈520 S cm and a stretchability of ≈300% without requiring a dehydration process. The conductivity reaches a maximum of ≈3304 S cm when the density of the dry gold network is controlled. A gold-adhesive hydrogel nanocomposite, which can achieve conformal adhesion to moving organ surfaces, is fabricated for bioelectronics demonstrations. The adhesive hydrogel electrode outperforms elastomer-based electrodes in in vivo epicardial electrogram recording, epicardial pacing, and sciatic nerve stimulation.

摘要

导电水凝胶的低电导率限制了它们在生物电子学中作为软导体的应用。这种低电导率源于水凝胶的高含水量,这阻碍了导电填料之间的载流子轻松传输。本研究提出了一种包含晶须状金纳米片的高导电性和可拉伸水凝胶纳米复合材料。制备了晶须状金纳米片的干网络,然后将其掺入湿水凝胶基质中。尽管含水量高,晶须状金纳米片在水凝胶中仍保持紧密互连,即使在拉伸状态下也能提供高质量的渗流网络。无论水凝胶基质的类型如何,金-水凝胶纳米复合材料在无需脱水过程的情况下,电导率约为520 S/cm,拉伸率约为300%。当控制干金网络的密度时,电导率最高可达约3304 S/cm。制备了一种可实现与移动器官表面共形粘附的金-粘性水凝胶纳米复合材料,用于生物电子学演示。粘性水凝胶电极在体内心外膜心电图记录、心外膜起搏和坐骨神经刺激方面优于基于弹性体的电极。

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