Zeng Yi, Liu Keliang, Ding Haibo, Chong Zhejun, Niu Yanfang, Guo Yijun, Wei Mengxiao, Du Xin, Gu Zhongze
State Key Laboratory of Digital Medical Engineering, School of Biological Science and Medical Engineering, Southeast University, Nanjing, 210096, China.
Small. 2024 Jan;20(3):e2306524. doi: 10.1002/smll.202306524. Epub 2023 Sep 11.
Photonic crystal hydrogels (PCHs), with smart stimulus-responsive abilities, have been widely exploited as colorimetric sensors for years. However, the current fabrication technologies are mostly applicable to produce PCHs with simple geometries at the sub-millimeter scale, limiting the introduction of structural design into PCH sensors as well as the accompanied advanced applications. This paper reports the microfabrication of three-dimensional (3D) PCHs with the help of supramolecular agarose PCH as a sacrificial scaffold by two-photon lithography (TPL). The supramolecular PCHs, formulated with SiO colloidal nanoparticles and agarose aqueous solutions, show bright structural color and are degradable upon short-time dimethyl sulfoxide treatment. Leveraging the supramolecular PCH as a sacrificial scaffold, PCHs with precise 3D geometries can be fabricated in an economical and efficient way. This work demonstrates the application of such a strategy in the creation of structural-designed PCH mechanical microsensors that have not been explored before.
多年来,具有智能刺激响应能力的光子晶体水凝胶(PCH)作为比色传感器得到了广泛应用。然而,目前的制造技术大多适用于生产亚毫米尺度上具有简单几何形状的PCH,这限制了结构设计在PCH传感器中的引入以及随之而来的先进应用。本文报道了借助超分子琼脂糖PCH作为牺牲支架,通过双光子光刻(TPL)对三维(3D)PCH进行微制造。由SiO胶体纳米颗粒和琼脂糖水溶液配制而成的超分子PCH呈现出明亮的结构色,并且在短时间二甲亚砜处理后可降解。利用超分子PCH作为牺牲支架,可以经济高效地制造出具有精确3D几何形状的PCH。这项工作展示了这种策略在创建前所未有的结构设计PCH机械微传感器中的应用。