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工程水凝胶基生物医学光子学:设计、制造和应用。

Engineering Hydrogel-Based Biomedical Photonics: Design, Fabrication, and Applications.

机构信息

3B's Research Group - Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, Guimarães, Portugal.

ICVS/3B's - Portuguese Government Associate Laboratory, University of Minho, Braga, Guimarães, Portugal.

出版信息

Adv Mater. 2021 Jun;33(23):e2006582. doi: 10.1002/adma.202006582. Epub 2021 Apr 30.

Abstract

Light guiding and manipulation in photonics have become ubiquitous in events ranging from everyday communications to complex robotics and nanomedicine. The speed and sensitivity of light-matter interactions offer unprecedented advantages in biomedical optics, data transmission, photomedicine, and detection of multi-scale phenomena. Recently, hydrogels have emerged as a promising candidate for interfacing photonics and bioengineering by combining their light-guiding properties with live tissue compatibility in optical, chemical, physiological, and mechanical dimensions. Herein, the latest progress over hydrogel photonics and its applications in guidance and manipulation of light is reviewed. Physics of guiding light through hydrogels and living tissues, and existing technical challenges in translating these tools into biomedical settings are discussed. A comprehensive and thorough overview of materials, fabrication protocols, and design architectures used in hydrogel photonics is provided. Finally, recent examples of applying structures such as hydrogel optical fibers, living photonic constructs, and their use as light-driven hydrogel robots, photomedicine tools, and organ-on-a-chip models are described. By providing a critical and selective evaluation of the field's status, this work sets a foundation for the next generation of hydrogel photonic research.

摘要

在从日常通信到复杂机器人和纳米医学等各种应用中,光子学中的导光和操控已经变得无处不在。光与物质相互作用的速度和灵敏度在生物医学光学、数据传输、光疗和多尺度现象检测方面提供了前所未有的优势。最近,水凝胶通过将其导光特性与光学、化学、生理和机械方面的活体组织相容性相结合,成为光子学和生物工程接口的有前途的候选材料。本文综述了水凝胶光子学的最新进展及其在光的引导和操控中的应用。讨论了通过水凝胶和活体组织导光的物理原理,以及将这些工具转化为生物医学应用的现有技术挑战。提供了水凝胶光子学中使用的材料、制造协议和设计架构的全面和深入的概述。最后,描述了应用结构的最新示例,例如水凝胶光纤、活体光子结构及其用作光驱动水凝胶机器人、光疗工具和器官芯片模型的用途。通过对该领域现状进行批判性和选择性评估,这项工作为下一代水凝胶光子学研究奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a2a/8647870/5321b75af44c/nihms-1705090-f0001.jpg

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