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用于仿生应用中渗透发电的生物聚合物膜。

Biopolymer Membranes for Osmotic Power Generation in Bionic Applications.

作者信息

Yu Changchun, Jia Fenghuan, Chen Dong, Wang Ziyi, Wagner Pawel, Liu Yong, Wang Caiyun

机构信息

School of Ophthalmology and Optometry, School of Biomedical Engineering, Wenzhou Medical University, Wenzhou, Zhejiang, 325027, China.

National Engineering Research Center of Ophthalmology and Optometry, Eye Hospital, Wenzhou Medical University, Wenzhou, Zhejiang, 325027, China.

出版信息

Adv Mater. 2025 Sep;37(36):e07770. doi: 10.1002/adma.202507770. Epub 2025 Aug 1.

Abstract

Osmotic power harvested from the physiological environment via reverse electrodialysis (RED) offers a net-zero chemical reaction and non-harmful byproducts, presenting a promising strategy for powering bionic devices. As a key component and ideal candidate, biopolymer membranes offer excellent biocompatibility, high ion conductivity, tunable surface modification, and biodegradability. This review provides an overview of biopolymer-based osmotic power generation for bionic applications. It uniquely bridges biopolymer membranes, RED, and bionic applications, addressing a critical research gap by integrating biopolymer membranes with RED technologies for biomedical use. It illustrates the mechanism of RED process and its bioinspired design, highlighting the role of biopolymer membranes in enhancing energy conversion efficiency and biological integration. The function of RED in ion regulation for monitoring and modulating physiological conditions is elucidated. Integrating biopolymer membrane with osmotic power generation offers a promising route to self-powered healthcare devices that harmonizes with the body's intrinsic biological processes.

摘要

通过反向电渗析(RED)从生理环境中获取的渗透能提供了净零化学反应和无害副产物,为为仿生设备供电提供了一种有前景的策略。作为关键组件和理想候选材料,生物聚合物膜具有出色的生物相容性、高离子导电性、可调节的表面改性和生物降解性。本综述概述了用于仿生应用的基于生物聚合物的渗透能发电。它独特地将生物聚合物膜、反向电渗析和仿生应用联系起来,通过将生物聚合物膜与用于生物医学用途的反向电渗析技术相结合,填补了一个关键的研究空白。它阐述了反向电渗析过程的机制及其仿生设计,突出了生物聚合物膜在提高能量转换效率和生物整合方面的作用。阐明了反向电渗析在监测和调节生理状况的离子调节中的功能。将生物聚合物膜与渗透能发电相结合为与人体内在生物过程相协调的自供电医疗设备提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a543/12422088/3e82702c9a41/ADMA-37-e07770-g007.jpg

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