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柔性衬底上铌酸锂纳米结构的高效颜色调谐

Highly Efficient Color Tuning of Lithium Niobate Nanostructures on Flexible Substrate.

作者信息

Zhang Weiming, Dai Shifeng, Wu Fengji, Pan Shifa, Su Jianzhi, Wu Pinghui, Cui Lina

机构信息

Fujian Provincial Key Laboratory for Advanced Micro-Nano Photonics Technology and Devices & Key Laboratory of Information Functional Material for Fujian Higher Education, Quanzhou Normal University, Quanzhou 362000, China.

College of Textiles and Apparel, Quanzhou Normal University, Quanzhou 362000, China.

出版信息

Materials (Basel). 2025 Feb 25;18(5):1006. doi: 10.3390/ma18051006.

Abstract

Nanostructures based on flexible material are essential for modulating reflected colors by actively changing the unit structure. However, current nanostructures face challenges in achieving active and efficient modulation across a broader spectral range. Here, we propose a stretchable color management method. The structure consists of a polydimethylsiloxane (PDMS) flexible substrate and cross-shaped lithium niobate (LiNbO). This study achieves reflection color changes, continuous adjustment, and automatic switching of solar spectrum reflectance by optimizing the geometric structure. It shows that the spectral tuning range is larger, benefiting from the special nanostructures and the stretchability of PDMS, which result in a larger tunable period range and a maximum wavelength shift of nearly 180 nm. Moreover, this unique design has been effectively balanced and optimized to respond to different polarization waves. Finally, the sensing characteristics of the nanostructure are studied through its response to changes in the refractive index (RI). The results demonstrate a method with implications for flexible electronic devices, color generation, and biochemical sensing, contributing to progress in flexible wearable technology and green building.

摘要

基于柔性材料的纳米结构对于通过主动改变单元结构来调制反射颜色至关重要。然而,当前的纳米结构在实现更宽光谱范围内的主动和高效调制方面面临挑战。在此,我们提出一种可拉伸的颜色管理方法。该结构由聚二甲基硅氧烷(PDMS)柔性基板和十字形铌酸锂(LiNbO)组成。本研究通过优化几何结构实现了反射颜色变化、连续调节以及太阳光谱反射率的自动切换。结果表明,得益于特殊的纳米结构和PDMS的可拉伸性,光谱调谐范围更大,可实现更大的可调周期范围以及近180 nm的最大波长偏移。此外,这种独特设计已得到有效平衡和优化,以响应不同的偏振波。最后,通过纳米结构对折射率(RI)变化的响应研究了其传感特性。结果展示了一种对柔性电子设备、颜色生成和生化传感具有重要意义的方法,为柔性可穿戴技术和绿色建筑的发展做出了贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3073/11901165/a56821190525/materials-18-01006-g001.jpg

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