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用于多材料挤出打印的分段式侧面发光水凝胶光纤。

Segmented, Side-Emitting Hydrogel Optical Fibers for Multimaterial Extrusion Printing.

作者信息

Kafrashian Zahra, Brück Stefan, Rogin Peter, Khamdan Mokhamad, Farrukh Hafiz Syed Usama Bin, Pearson Samuel, Del Campo Aránzazu

机构信息

INM - Leibniz Institute for New Materials, Campus D2 2, 66123, Saarbrücken, Germany.

Saarland University, Chemistry Department, 66123, Saarbrücken, Germany.

出版信息

Adv Mater. 2025 Jan;37(4):e2309166. doi: 10.1002/adma.202309166. Epub 2024 Dec 4.

Abstract

Side-emitting optical fibers allow light to be deliberately outcoupled along the fiber. Introducing a customized side-emission profile requires modulation of the guiding and emitting properties along the fiber length, which is a particular challenge in continuous processing of soft waveguides. In this work, it is demonstrated that multimaterial extrusion printing can generate hydrogel optical fibers with tailored segments for light-side emission. The fibers are based on diacrylated Pluronic F-127 (PluDA). 1 mm diameter fibers are printed with segments of different optical properties by switching between a PluDA waveguiding ink and a PluDA scattering ink containing nanoparticles. The method allows the fabrication of fibers with segment lengths below 500 microns in a continuous process. The length of the segments is tailored by varying the switching time between inks during printing. Fibers with customized side-emission profiles along their length are presented. The functionality of the printed fibers is demonstrated by exciting fluorescence inside a surrounding 3D hydrogel. The presented technology and material combination allow unprecedented flexibility for designing soft optical fibers with customizable optical properties using simple processes and a medical material. This approach can be of interest to improve illumination inside tissues for photodynamic therapy (PDT).

摘要

侧面发光光纤可使光线沿光纤有意向外耦合。引入定制的侧面发射轮廓需要调制沿光纤长度的导光和发光特性,这在软波导的连续加工中是一项特殊挑战。在这项工作中,证明了多材料挤出打印可以制造具有用于光侧面发射的定制段的水凝胶光纤。这些光纤基于二丙烯酸化的普朗尼克F - 127(PluDA)。通过在PluDA导光波墨和含有纳米颗粒的PluDA散射墨之间切换,打印出直径为1毫米且具有不同光学特性段的光纤。该方法允许在连续过程中制造段长度低于500微米的光纤。通过改变打印过程中墨之间的切换时间来定制段的长度。展示了沿其长度具有定制侧面发射轮廓的光纤。通过激发周围3D水凝胶内部的荧光来证明打印光纤的功能。所展示的技术和材料组合为使用简单工艺和医用材料设计具有可定制光学特性的软光纤提供了前所未有的灵活性。这种方法对于改善光动力疗法(PDT)中组织内部的照明可能具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7a3/11775871/90e596c012e9/ADMA-37-2309166-g001.jpg

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