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基于形状记忆聚合物的4D光纤。

4D Optical fibers based on shape-memory polymers.

作者信息

Strutynski Clément, Evrard Marianne, Désévédavy Frédéric, Gadret Grégory, Jules Jean-Charles, Brachais Claire-Hélène, Kibler Bertrand, Smektala Frédéric

机构信息

Laboratoire Interdisciplinaire Carnot de Bourgogne (ICB) UMR 6303 CNRS-Université de Bourgogne, 21078, Dijon, France.

出版信息

Nat Commun. 2023 Oct 17;14(1):6561. doi: 10.1038/s41467-023-42355-7.

Abstract

Adaptative objects based on shape-memory materials are expected to significantly impact numerous technological sectors including optics and photonics. In this work, we demonstrate the manufacturing of shape-memory optical fibers from the thermal stretching of additively manufactured preforms. First, we show how standard commercially-available thermoplastics can be used to produce long continuously-structured microfilaments with shape-memory abilities. Shape recovery as well as programmability performances of such elongated objects are assessed. Next, we open the way for light-guiding multicomponent fiber architectures that are able to switch from temporary configurations back to user-defined programmed shapes. In particular, we show that distinct designs of fabricated optical fibers can maintain efficient light transmission upon completion of multiple temperature-triggered bending/straightening cycles. Such fibers are also programmed into more complex shapes including coils or near 180 ° curvatures for delivering laser light around obstacles. Finally, a shape-memory exposed-core fiber is employed in fiber evanescent wave spectroscopy experiments to optimize the performance of the sensing scheme. We strongly expect that such actuatable fibers with light-guiding abilities will trigger exciting progress of unprecedented smart devices in the areas of photonics, electronics, or robotics.

摘要

基于形状记忆材料的自适应物体有望对包括光学和光子学在内的众多技术领域产生重大影响。在这项工作中,我们展示了通过对增材制造预制件进行热拉伸来制造形状记忆光纤。首先,我们展示了如何使用标准的商用热塑性塑料来生产具有形状记忆能力的长连续结构微丝。评估了此类细长物体的形状恢复以及可编程性能。接下来,我们为能够从临时配置切换回用户定义的编程形状的导光多组分光纤架构开辟了道路。特别是,我们表明,制造的光纤的不同设计在完成多个温度触发的弯曲/拉直循环后能够保持高效的光传输。此类光纤还被编程为更复杂的形状,包括线圈或接近180°的曲率,以便在障碍物周围传输激光。最后,在光纤倏逝波光谱实验中采用了形状记忆裸芯光纤,以优化传感方案的性能。我们强烈期望这种具有导光能力的可驱动光纤将在光子学、电子学或机器人技术领域引发前所未有的智能设备的激动人心的进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f586/10582083/f3c3e94abfae/41467_2023_42355_Fig1_HTML.jpg

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