材料科学
法布里-珀罗干涉仪
等离子体子
纳米光子学
结构着色
光热治疗
光电子学
纳米颗粒
电介质
含氟聚合物
表面等离子共振
纳米技术
光学
纳米结构
数字光处理
光热效应
等离子纳米粒子
聚合物
可见光谱
胶体金
光学现象
表面等离子体子
纳米材料
RGB颜色模型
作者
Taehyun Kim,Hyeonbin Woo,Ji Min Baek,Seungyeop Choi,MinJoong Kim,Hyejeong Seong,Minah Seo,Oh Seok Kwon,Dong‐Hwan Kim,Yong‐Sang Ryu
标识
DOI:10.1002/adfm.202521445
摘要
Abstract Achieving drastic color tuning in nanophotonic devices requires nanostructures optimized through a deep understanding of light‐matter interactions, including resonance wavelengths and their associated electric‐field distributions. This study rigorously investigates heat‐assisted nanoparticle rearrangement to achieve precise color tuning. A Fabry–Pérot (FP) etalon is proposed, comprising multi‐layered metal–dielectric–metal films, plasmonic nanoparticle assembly, a fluoropolymer dielectric, and a metal mirror layer, enabling nanoparticle‐behavior tracking at visible wavelengths. Through controlled experiments and simulations, the roles of physical elements in the FP etalon are investigated, particularly the optical cavity thickness and the filling fraction of the top layer. To enhance color variation through the dynamic behavior of nanoparticles during successive heating processes, a flowable polymer film is prepared as a dielectric layer, and color tunability is systematically examined. The investigation focuses on the heat‐assisted dynamic behavior of nanoparticles, including the submergence and coalescence of gold nanoparticles, along with the simultaneous shrinkage of the surrounding polymer film. Based on the results, laser‐mediated local color tuning via the photothermal effect of gold nanoparticles is performed for potential application as a color printing technique.
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