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用于软生物电子学的高导电和可拉伸双网络水凝胶。

Highly Conducting and Stretchable Double-Network Hydrogel for Soft Bioelectronics.

机构信息

Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

出版信息

Adv Mater. 2022 Apr;34(15):e2200261. doi: 10.1002/adma.202200261. Epub 2022 Mar 7.

Abstract

Conducting polymer hydrogels are promising materials in soft bioelectronics because of their tissue-like mechanical properties and the capability of electrical interaction with tissues. However, it is challenging to balance electrical conductivity and mechanical stretchability: pure conducting polymer hydrogels are highly conductive, but they are brittle; while incorporating the conducting network with a soft network to form a double network can improve the stretchability, its electrical conductivity significantly decreases. Here, the problem is addressed by concentrating a poorly crosslinked precursor hydrogel with a high content ratio of the conducting polymer to achieve a densified double-network hydrogel (5.5 wt% conducting polymer), exhibiting both high electrical conductivity (≈10 S cm ) and a large fracture strain (≈150%), in addition to high biocompatibility, tissue-like softness, low swelling ratio, and desired electrochemical properties for bioelectronics. A surface grafting method is further used to form an adhesive layer on the conducting hydrogel, enabling robust and rapid bonding on the tissues. Furthermore, the proposed hydrogel is applied to show high-quality physiological signal recording and reliable, low-voltage electrical stimulation based on an in vivo rat model. This method provides an ideal strategy for rapid and reliable tissue-device integration with high-quality electrical communications.

摘要

导电高分子水凝胶由于其类似组织的机械性能和与组织的电相互作用的能力,是软生物电子学中很有前途的材料。然而,平衡电导率和机械拉伸性具有挑战性:纯导电高分子水凝胶具有高导电性,但它们很脆;而将导电网络与软网络结合形成双网络可以提高拉伸性,但电导率会显著降低。在这里,通过浓缩具有高比例导电聚合物的交联前体水凝胶来解决这个问题,从而实现了一种致密的双网络水凝胶(5.5wt%导电聚合物),具有高电导率(≈10 S cm)和大断裂应变(≈150%),此外还具有高生物相容性、类似组织的柔软性、低溶胀率以及适用于生物电子学的电化学性能。进一步使用表面接枝方法在导电水凝胶上形成粘合层,从而能够在组织上实现牢固且快速的粘合。此外,所提出的水凝胶被应用于展示高质量的生理信号记录和基于体内大鼠模型的可靠、低电压电刺激。该方法为快速可靠的组织-器件集成提供了一种理想的策略,具有高质量的电通信。

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