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具有增强生物交互功能的柔软水凝胶半导体

Soft hydrogel semiconductors with augmented biointeractive functions.

作者信息

Dai Yahao, Wai Shinya, Li Pengju, Shan Naisong, Cao Zhiqiang, Li Yang, Wang Yunfei, Liu Youdi, Liu Wei, Tang Kan, Liu Yuzi, Hua Muchuan, Li Songsong, Li Nan, Chatterji Shivani, Fry H Christopher, Lee Sean, Zhang Cheng, Weires Max, Sutyak Sean, Shi Jiuyun, Zhu Chenhui, Xu Jie, Gu Xiaodan, Tian Bozhi, Wang Sihong

机构信息

Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL 60637, USA.

School of Polymer Science and Engineering, Center for Optoelectronic Materials and Devices, University of Southern Mississippi, Hattiesburg, MS 39406, USA.

出版信息

Science. 2024 Oct 25;386(6720):431-439. doi: 10.1126/science.adp9314. Epub 2024 Oct 24.

Abstract

Hydrogels, known for their mechanical and chemical similarity to biological tissues, are widely used in biotechnologies, whereas semiconductors provide advanced electronic and optoelectronic functionalities such as signal amplification, sensing, and photomodulation. Combining semiconducting properties with hydrogel designs can enhance biointeractive functions and intimacy at biointerfaces, but this is challenging owing to the low hydrophilicity of polymer semiconductors. We developed a solvent affinity-induced assembly method that incorporates water-insoluble polymer semiconductors into double-network hydrogels. These semiconductors exhibited tissue-level moduli as soft as 81 kilopascals, stretchability of 150% strain, and charge-carrier mobility up to 1.4 square centimeters per volt per second. When they are interfaced with biological tissues, their tissue-level modulus enables alleviated immune reactions. The hydrogel's high porosity enhances molecular interactions at semiconductor-biofluid interfaces, resulting in photomodulation with higher response and volumetric biosensing with higher sensitivity.

摘要

水凝胶因其在机械和化学性质上与生物组织相似而在生物技术中广泛应用,而半导体则提供先进的电子和光电功能,如信号放大、传感和光调制。将半导体特性与水凝胶设计相结合可以增强生物界面处的生物交互功能和亲密性,但由于聚合物半导体的亲水性较低,这具有挑战性。我们开发了一种溶剂亲和力诱导组装方法,将水不溶性聚合物半导体纳入双网络水凝胶中。这些半导体表现出低至81千帕的组织级模量、150%应变的拉伸性以及高达每伏每秒1.4平方厘米的载流子迁移率。当它们与生物组织接触时,其组织级模量能够减轻免疫反应。水凝胶的高孔隙率增强了半导体与生物流体界面处的分子相互作用,从而实现更高响应的光调制和更高灵敏度的体积生物传感。

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