Wang Tao, Wang Yu, Fu Yinghao, Chen Zhaoxian, Jiang Chang, Ji Yue-E, Lu Yanqing
National Laboratory of Solid State Microstructures, Key Laboratory of Intelligent Optical Sensing and Manipulation, College of Engineering and Applied Sciences, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, 210023, China.
Adv Sci (Weinh). 2024 Jul;11(28):e2400442. doi: 10.1002/advs.202400442. Epub 2024 May 17.
Creating photonic crystals that can integrate and switch between multiple structural color images will greatly advance their utility in dynamic information transformation, high-capacity storage, and advanced encryption, but has proven to be highly challenging. Here, it is reported that by programmably integrating newly developed 1D quasi-periodic folding structures into a 3D photonic crystal, the generated photonic superstructure exhibits distinctive optical effects that combine independently manipulatable specular and anisotropic diffuse reflections within a versatile protein-based platform, thus creating different optical channels for structural color imaging. The polymorphic transition of the protein format allows for the facile modulation of both folding patterns and photonic lattices and, therefore, the superstructure's spectral response within each channel. The capacity to manipulate the structural assembly of the superstructure enables the programmable encoding of multiple independent patterns into a single system, which can be decoded by the simple adjustment of lighting directions. The multifunctional utility of the photonic platform is demonstrated in information processing, showcasing its ability to achieve multimode transformation of information codes, multi-code high-capacity storage, and high-level numerical information encryption. The present strategy opens new pathways for achieving multichannel transformable imaging, thereby facilitating the development of emerging information conversion, storage, and encryption media using photonic crystals.
创建能够在多个结构彩色图像之间集成和切换的光子晶体,将极大地推动其在动态信息转换、高容量存储和高级加密方面的应用,但事实证明这极具挑战性。在此,据报道,通过将新开发的一维准周期折叠结构可编程地集成到三维光子晶体中,所产生的光子超结构展现出独特的光学效应,在一个通用的蛋白质基平台内结合了可独立操控的镜面反射和各向异性漫反射,从而为结构彩色成像创建了不同的光学通道。蛋白质形式的多晶型转变允许轻松调节折叠模式和光子晶格,进而调节每个通道中超结构的光谱响应。操纵超结构结构组装的能力使得能够将多个独立图案可编程地编码到单个系统中,这可以通过简单调整光照方向来解码。光子平台的多功能实用性在信息处理中得到了证明,展示了其实现信息代码多模式转换、多代码高容量存储和高级数字信息加密的能力。本策略为实现多通道可转换成像开辟了新途径,从而推动了使用光子晶体的新兴信息转换、存储和加密介质的发展。