1. 太原工业学院机械工程系,太原,030008
2. 西安交通大学机械制造系统工程国家重点实验室,西安,710049
3. 中北大学仪器科学与动态测试教育部重点实验室,太原,030051
4. 中国煤炭科工集团太原研究院有限公司,太原,030032
: 2023-01-11。作者简介: 赵鹏飞(1984-),男,博士,副教授
李博(通信作者),男,副教授,博士生导师。基金项目: 国家自然科学基金资助项目(52075411)
网络首发:2023-07-10,
纸质出版:2023
移动端阅览
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ZHAO Pengfei, LI Bo, CHENG Lixia, et al. Research Progress in Technology of Flexible Photonic Crystal Structural Color Control Actuated via Electroactive Materials[J]. 2023, 57(7): 84-100.
赵鹏飞, 李博, 程丽霞, 等. 电活性材料驱动的柔性光子晶体结构色调控技术研究进展[J]. 西安交通大学学报, 2023,57(7):84-100. DOI: 10.7652/xjtuxb202307008.
ZHAO Pengfei, LI Bo, CHENG Lixia, et al. Research Progress in Technology of Flexible Photonic Crystal Structural Color Control Actuated via Electroactive Materials[J]. 2023, 57(7): 84-100. DOI: 10.7652/xjtuxb202307008.
针对柔性光子晶体结构变色范围小、柔性不足的问题
对柔性光子晶体结构色调控方法进行了综述
介绍了结构变色的作用机理、载体材料和主要调控方法
对电场型、离子型、电热型电活性材料的变形速度、响应时间、驱动电压、能耗量级和最大应变进行了归纳和对比。对电致结构色调控技术的国内外研究现状进行了归纳和分析
并对各种代表性电致变色技术的变色范围、杨氏模量、驱动电压等主要性能参数进行了对比。通过分析发现传统电致变色技术难以兼顾柔性好、低驱动电压和大变色范围。在全面回顾文献的基础上重点阐述了电活性材料驱动的柔性光子晶体结构色调控技术发展现状
阐明了这种结构色调控方式具有柔性好、易封装、响应模式丰富等独特优势
总结出电活性材料驱动的柔性光子晶体结构色调控是电致结构变色领域中最具发展潜力的技术
同时指出了其面临的问题以及未来的发展趋势。
In terms of the small range and insufficient flexibility of flexible photonic crystal structural color change
the structural color control method of flexible photonic crystals is reviewed. The mechanism
carrier materials and main methods of structural color control are introduced. The deformation velocity
response time
actuating voltage
energy consumption and maximum strain of dielectric
ionic and thermal electroactive materials are summarized and compared. The research progress in electrochromic technology at home and abroad is summarized and analyzed
and the main performance parameters such as color change range
Young's modulus and driving voltage of various representative electrochromic technologies are compared. It is found that it is difficult for traditional electrochromic technology to balance among good flexibility
low actuating voltage and a large color change range. On the basis of a comprehensive review
this paper focuses on the development status of flexible photonic crystal structural color control technology actuated via electroactive materials
and clarifies the unique advantages of this structural color control method
such as good flexibility
easy packaging
and multiple response patterns. Finally
this paper summarizes that the flexible photonic crystal structural color control technology actuated via electroactive materials is the most promising technology in the field of electrochromism
and also points out the problems faced by as well as the future developing trend of this technology.
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