Non-volatile dynamically switchable color display via chalcogenide stepwise cavity resonators

被引:27
作者
Liu, Kuan [1 ]
Lin, Zhenyuan [3 ]
Han, Bing [1 ]
Hong, Minghui [2 ]
Cao, Tun [1 ]
机构
[1] Dalian Univ Technol, Sch Optoelect Engn & Instrumentat Sci, Dalian 116024, Peoples R China
[2] Xiamen Univ, Pen Tung Sah Inst Micronano Sci & Technol, Xiamen 361102, Peoples R China
[3] Beijing Univ Technol, Inst Laser Engn, Fac Mat & Mfg, Beijing 100124, Peoples R China
关键词
tunable; color displays; Fabry-Perot cavity resonators; color printing; chalcogenide materials; CONTRAST; CRYSTAL; FILTERS; METALS;
D O I
10.29026/oea.2024.230033
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
High-resolution multi-color printing relies upon pixelated optical nanostructures, which is crucial to promote color display by producing nonbleaching colors, yet requires simplicity in fabrication and dynamic switching. Antimony trisulfide (Sb2S3) is a newly rising chalcogenide material that possesses prompt and significant transition of its optical characteristics in the visible region between amorphous and crystalline phases, which holds the key to color-varying devices. Herein, we proposed a dynamically switchable color printing method using Sb2S3-based stepwise pixelated Fabry-Perot (FP) cavities with various cavity lengths. The device was fabricated by employing a direct laser patterning that is a less time-consuming, more approachable, and low-cost technique. As switching the state of Sb(2)S(3)between amorphous and crystalline, the multi-color of stepwise pixelated FP cavities can be actively changed. The color variation is due to the pro-found change in the refractive index of Sb(2)S(3)over the visible spectrum during its phase transition. Moreover, we directly fabricated sub-50 nm nanograting on ultrathin Sb(2)S(3)laminate via microsphere 800-nm femtosecond laser irradiation in far field. The minimum feature size can be further decreased down to similar to 45 nm (lambda/17) by varying the thickness of Sb(2)S(3)film. Ultrafast switchable Sb(2)S(3)photonic devices can take one step toward the next generation of inkless erasable papers or displays and enable information encryption, camouflaging surfaces, anticounterfeiting, etc. Importantly, our work explores the prospects of rapid and rewritable fabrication of periodic structures with nano-scale resolution and can serve as a guideline for further development of chalcogenide-based photonics components.
引用
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页数:12
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