Vaz Raquel, Frasco Manuela F, Sales M Goreti F
BioMark Sensor Research/UC, Faculty of Sciences and Technology, Coimbra University Coimbra Portugal.
BioMark Sensor Research/ISEP, School of Engineering, Polytechnic Institute of Porto Porto Portugal
Nanoscale Adv. 2020 Sep 14;2(11):5106-5129. doi: 10.1039/d0na00445f. eCollection 2020 Nov 11.
Biological systems possess nanoarchitectures that have evolved for specific purposes and whose ability to modulate the flow of light creates an extraordinary diversity of natural photonic structures. In particular, the striking beauty of the structural colouration observed in nature has inspired technological innovation in many fields. Intense research has been devoted to mimicking the unique vivid colours with newly designed photonic structures presenting stimuli-responsive properties, with remarkable applications in health care, safety and security. This review highlights bioinspired photonic approaches in this context, starting by presenting many appealing examples of structural colours in nature, followed by describing the versatility of fabrication methods and designed coloured structures. A particular focus is given to optical sensing for medical diagnosis, food control and environmental monitoring, which has experienced a significant growth, especially considering the advances in obtaining inexpensive miniaturized systems, more reliability, fast responses, and the use of label-free layouts. Additionally, naturally derived biomaterials and synthetic polymers are versatile and fit many different structural designs that are underlined. Progress in bioinspired photonic polymers and their integration in novel devices is discussed since recent developments have emerged to lift the expectations of smart, flexible, wearable and portable sensors. The discussion is expanded to give emphasis on additional functionalities offered to related biomedical applications and the use of structural colours in new sustainable strategies that could meet the needs of technological development.
生物系统拥有纳米结构,这些纳米结构是为特定目的而进化的,其调节光流的能力创造了自然光子结构的非凡多样性。特别是,自然界中观察到的结构色的惊人之美激发了许多领域的技术创新。人们进行了大量研究,致力于用具有刺激响应特性的新设计光子结构来模仿独特的鲜艳颜色,并在医疗保健、安全保障等方面有显著应用。本综述重点介绍了在此背景下受生物启发的光子学方法,首先展示了自然界中许多引人注目的结构色实例,接着描述了制造方法的多样性和设计的有色结构。特别关注用于医学诊断、食品检测和环境监测的光学传感,这方面有了显著发展,尤其是考虑到在获得廉价的小型化系统、更高的可靠性、快速响应以及使用无标记布局方面取得的进展。此外,天然衍生的生物材料和合成聚合物具有多种用途,适合许多不同的结构设计,这一点也得到了强调。文中讨论了受生物启发的光子聚合物的进展及其在新型器件中的集成情况,因为最近的发展提升了人们对智能、灵活、可穿戴和便携式传感器的期望。讨论范围进一步扩大,强调了为相关生物医学应用提供的额外功能以及结构色在新的可持续策略中的应用,这些策略能够满足技术发展的需求。