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Elastomeric Optical Waveguides by Extrusion Printing | |
2022-10-10 | |
发表期刊 | ADVANCED MATERIALS TECHNOLOGIES
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ISSN | / |
EISSN | 2365-709X |
发表状态 | 已发表 |
DOI | 10.1002/admt.202101539 |
摘要 | Advances in optogenetics and the increasing use of implantable devices for therapies and health monitoring are driving demand for compliant, biocompatible optical waveguides and scalable methods for their manufacture. Molding, thermal drawing, and dip-coating are the most prevalent approaches in recent literature. Here the authors demonstrate that extrusion printing at room temperature can be used for continuous fabrication of compliant optical waveguides with polydimethylsiloxane (PDMS) core and crosslinked Pluronic F127-diacrylate (Pluronic-DA) cladding. The optical fibers are printed from fluid precursor inks and stabilized by physical interactions and photoinitiated crosslinking in the Pluronic-DA. The printed fibers show optical loss values of 0.13–0.34 dB cm–1 in air and tissue within the wavelength range of 405–520 nm. The fibers have a Young's Modulus (Pluronic cladding) of 150 kPa and can be stretched to more than 5 times their length. The optical loss of the fibers shows little variation with extension. This work demonstrates how printing can simplify the fabrication of compliant and stretchable devices from materials approved for clinical use. These can be of interest for optogenetic or photopharmacology applications in extensible tissues, like muscles or heart. © 2022 The Authors. Advanced Materials Technologies published by Wiley-VCH GmbH. |
关键词 | Biocompatibility Elastic moduli Extrusion Optical fiber fabrication Optical waveguides Polydimethylsiloxane Scalability Silicones Tensile strength Tissue Diacrylates Driving demand Extrusion printing Health monitoring Implantable devices Optogenetics Photo activations Pluronic F-127 Pluronics Therapy monitoring |
收录类别 | EI |
语种 | 英语 |
出版者 | John Wiley and Sons Inc |
EI入藏号 | 20221712034523 |
EI主题词 | Optical fibers |
EI分类号 | 461.2 Biological Materials and Tissue Engineering ; 461.9.1 Immunology ; 714.3 Waveguides ; 741.1.2 Fiber Optics ; 741.3 Optical Devices and Systems ; 815.1.1 Organic Polymers ; 951 Materials Science ; 961 Systems Science |
原始文献类型 | Article in Press |
引用统计 | 正在获取...
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文献类型 | 期刊论文 |
条目标识符 | https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/180948 |
专题 | 物质科学与技术学院_PI研究组_郑宜君组 |
通讯作者 | del Campo, Aránzazu |
作者单位 | 1.INM – Leibniz Institute for New Materials, Campus D2 2, Saarbrücken; 66123, Germany; 2.Chemistry Department, Saarland University, Saarbrücken; 66123, Germany; 3.Biotechnology Centre, The Silesian University of Technology, Boleslawa Krzywoustego 8, Gliwice; 44-100, Poland; 4.Institut für Chemie und Biochemie – Organische Chemie, Freie Universität Berlin, Takustrasse 3, Berlin; 14195, Germany; 5.School of Physical Science and Technology, ShanghaiTech University, Shanghai; 201210, China; 6.Institute for Molecular Systems Engineering (IMSE), Heidelberg University, Heidelberg; 69120, Germany; 7.Polymer Science, University of Groningen, Nijenborgh 4, Groningen; 9747AG, Netherlands |
推荐引用方式 GB/T 7714 | Feng, Jun,Zheng, Yijun,Jiang, Qiyang,et al. Elastomeric Optical Waveguides by Extrusion Printing[J]. ADVANCED MATERIALS TECHNOLOGIES,2022. |
APA | Feng, Jun,Zheng, Yijun,Jiang, Qiyang,Wlodarczyk-Biegun, Malgorzata K.,Pearson, Samuel,&del Campo, Aránzazu.(2022).Elastomeric Optical Waveguides by Extrusion Printing.ADVANCED MATERIALS TECHNOLOGIES. |
MLA | Feng, Jun,et al."Elastomeric Optical Waveguides by Extrusion Printing".ADVANCED MATERIALS TECHNOLOGIES (2022). |
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