Centre for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore 639798, Singapore.
Molecular Engineering Lab, Institute of Molecular and Cell Biology (IMCB), Agency for Science Technology and Research (A*STAR), Singapore 138673, Singapore.
ACS Appl Mater Interfaces. 2022 May 11;14(18):21436-21452. doi: 10.1021/acsami.2c01999. Epub 2022 Apr 27.
The remarkable dynamic camouflage ability of cephalopods arises from precisely orchestrated structural changes within their chromatophores and iridophores photonic cells. This mesmerizing color display remains unmatched in synthetic coatings and is regulated by swelling/deswelling of reflectin protein nanoparticles, which alters platelet dimensions in iridophores to control photonic patterns according to Bragg's law. Toward mimicking the photonic response of squid's skin, reflectin proteins from were sequenced, recombinantly expressed, and self-assembled into spherical nanoparticles by conjugating reflectin B1 with a click chemistry ligand. These quasi-monodisperse nanoparticles can be tuned to any desired size in the 170-1000 nm range. Using Langmuir-Schaefer and drop-cast deposition methods, ligand-conjugated reflectin B1 nanoparticles were immobilized onto azide-functionalized substrates via click chemistry to produce monolayer amorphous photonic structures with tunable structural colors based on average particle size, paving the way for the fabrication of eco-friendly, bioinspired color-changing coatings that mimic cephalopods' dynamic camouflage.
头足类动物令人惊叹的动态伪装能力源于其色细胞和虹彩细胞中精确协调的结构变化。这种令人着迷的颜色显示在合成涂层中仍然无与伦比,由反射蛋白纳米颗粒的溶胀/去溶胀调节,根据布拉格定律改变虹彩细胞中的血小板尺寸来控制光子图案。为了模拟鱿鱼皮肤的光子响应,对 的反射蛋白进行了测序、重组表达,并通过将反射蛋白 B1 与点击化学配体偶联自组装成球形纳米颗粒。这些准单分散纳米颗粒可以在 170-1000nm 范围内调谐到任何所需的尺寸。使用 Langmuir-Schaefer 和滴铸沉积方法,通过点击化学将偶联配体的反射蛋白 B1 纳米颗粒固定在叠氮功能化的基底上,生成基于平均粒径的具有可调结构颜色的无定形单层光子结构,为制造环保、仿生变色涂层铺平了道路,这些涂层可以模拟头足类动物的动态伪装。