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在近红外区域具有增强性能的机械坚固的生物聚合物光纤。

Mechanically Robust Biopolymer Optical Fibers with Enhanced Performance in the Near-Infrared Region.

作者信息

Patrakka Jani, Hynninen Ville, Lahtinen Manu, Hokkanen Ari, Orelma Hannes, Sun Zhipei

机构信息

Faculty of Engineering and Natural Sciences, Tampere University, Korkeakoulunkatu 6, FI-33720 Tampere, Finland.

Department of Chemistry, University of Jyväskylä, P.O. Box 35, FI-40014 Jyväskylä, Finland.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 14;16(32):42704-42716. doi: 10.1021/acsami.4c08879. Epub 2024 Jul 31.

Abstract

Polymer optical fibers (POFs) are lightweight, fatigue-tolerant, and suitable for local area networks, automobiles, aerospace, smart textiles, supercomputers, and servers. However, commercially available POFs are exclusively fabricated using synthetic polymers derived from nonrenewable resources. Recently, attempts have been made to fabricate biocompatible and biopolymeric optical fibers. However, their limitations in mechanical performance, thermal stability, and optical properties foil practical applications in waveguiding. Here, we report a comprehensive study of the preparation of biopolymer optical fibers with tailored mechanical strength, thermal properties, and their short-distance applications. Specifically, we use alginate as one of the key components with methylcelluloses to promote readily scalable wet spinning at ambient conditions to fabricate 21 combinations of composite fibers. The fibers display high maximum strain (up to 58%), Young's modulus (up to 11 GPa), modulus of toughness (up to 63 MJ/m), and a high strength (up to 195 MPa), depending on the composition and fabrication conditions. The modulus of toughness is comparable to that of glass optical fibers, while the maximum strain is nearly 15 times higher. The mechanically robust fibers with high thermal stability allow rapid humidity, touch sensing, and complex shapes such as serpentine, coil, or twisted structures without losing their light transmission properties. More importantly, the fibers display enhanced optical performance and sensitivity in the near-infrared (NIR) region, making them suitable for advanced biomedical applications. Our work suggests that biobased materials offer innovative solutions to create short-distance optical fibers from fossil fuel-free resources with novel functionalities.

摘要

聚合物光纤(POF)重量轻、耐疲劳,适用于局域网、汽车、航空航天、智能纺织品、超级计算机和服务器。然而,市售的POF完全是用源自不可再生资源的合成聚合物制造的。最近,人们尝试制造生物相容性和生物聚合物光纤。然而,它们在机械性能、热稳定性和光学性能方面的局限性阻碍了其在波导中的实际应用。在此,我们报告了一项关于制备具有定制机械强度、热性能及其短距离应用的生物聚合物光纤的综合研究。具体而言,我们使用藻酸盐作为关键成分之一与甲基纤维素一起,以促进在环境条件下易于扩展的湿法纺丝,从而制造出21种复合纤维组合。根据组成和制造条件,这些纤维显示出高的最大应变(高达58%)、杨氏模量(高达11 GPa)、韧性模量(高达63 MJ/m)和高强度(高达195 MPa)。韧性模量与玻璃光纤相当,而最大应变则高出近15倍。具有高热稳定性的机械坚固的纤维允许快速进行湿度、触摸传感以及形成蛇形、线圈或扭曲结构等复杂形状,而不会失去其光传输特性。更重要的是,这些纤维在近红外(NIR)区域显示出增强的光学性能和灵敏度,使其适用于先进的生物医学应用。我们的工作表明,生物基材料为利用无化石燃料资源制造具有新颖功能的短距离光纤提供了创新解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9eb/11332404/72b8baa85ffc/am4c08879_0001.jpg

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