Lee Juyoung, Ban Soohyun, Jo Kyuhyung, Oh Hyeong Seok, Cho Jinhyeok, Ku Kang Hee
School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.
ACS Nano. 2024 Feb 13;18(6):5196-5205. doi: 10.1021/acsnano.4c00230. Epub 2024 Feb 2.
Diblock copolymer (dBCP) particles capable of dynamic shape and color changes have gained significant attention due to their versatility in programmable shapes and intricate nanostructures. However, their application in photonic systems remains limited due to challenges in achieving a sufficient number of defect-free photonic layers over a tens-of-micrometer scale. In this study, we present a pioneering demonstration of photonic dBCP particles featuring over 300 axially stacked photonic layers with responsive color- and shape-transforming capabilities. Our approach leverages the complex interplay between the macrophase separation of multiple incompatible components and the microphase separation of dBCP from solvent-evaporative microemulsions. Specifically, continuous phase separation of silicone oil from polystyrene--poly(2-vinylpyridine) (PS--P2VP), triggered by solvent evaporation, promotes the anisotropic growth of PS--P2VP layers. This results in the formation of Janus colloids, where an oil droplet merges with a nanostructured polymer cone and lamellar structures align along the long axis of the cone. We highlight the capability to precisely adjust the particle morphology and the corresponding orientation, dispersion, and structural color window by modulating both the molecular weight of PS--P2VP and the volume ratio between PS--P2VP and silicone oil. Furthermore, reversible swelling/deswelling of photonic colloids is visualized and correlated with their structural colors. Finally, we demonstrate the potential of this study by presenting a multicolor-patterned array of photonic colloids, highlighting the possibilities for applications in smart photonic ink and devices.
能够实现动态形状和颜色变化的双嵌段共聚物(dBCP)颗粒,因其在可编程形状和复杂纳米结构方面的多功能性而备受关注。然而,由于在数十微米尺度上获得足够数量的无缺陷光子层存在挑战,它们在光子系统中的应用仍然有限。在本研究中,我们展示了一种具有开创性的光子dBCP颗粒,其具有超过300个轴向堆叠的光子层,并具备响应性颜色和形状转换能力。我们的方法利用了多种不相容组分的宏观相分离与dBCP从溶剂蒸发微乳液中的微相分离之间的复杂相互作用。具体而言,由溶剂蒸发引发的硅油与聚苯乙烯 - 聚(2-乙烯基吡啶)(PS - P2VP)的连续相分离,促进了PS - P2VP层的各向异性生长。这导致了Janus胶体的形成,其中油滴与纳米结构的聚合物锥体合并,并且层状结构沿锥体的长轴排列。我们强调了通过调节PS - P2VP的分子量以及PS - P2VP与硅油之间的体积比,能够精确调整颗粒形态以及相应的取向、分散和结构色窗口。此外,可视化了光子胶体的可逆溶胀/去溶胀过程,并将其与它们的结构颜色相关联。最后,我们通过展示光子胶体的多色图案阵列,证明了本研究的潜力,突出了其在智能光子墨水和器件中的应用可能性。