DNA折纸
钻石
光子学
金刚石立方
紫外线
纳米
胶体晶体
光子晶体
纳米尺度
格子(音乐)
波长
紫外线
自组装
折射率对比度
结构着色
折射率
材料科学
纳米技术
胶体
制作
光电子学
化学
物理
纳米结构
复合材料
声学
医学
替代医学
物理化学
病理
作者
Gregor Posnjak,Xin Yin,Paul Butler,Oliver Bienek,Mihir Dass,Seungwoo Lee,Ian D. Sharp,Tim Liedl
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2024-05-16
卷期号:384 (6697): 781-785
被引量:19
标识
DOI:10.1126/science.adl2733
摘要
Colloidal self-assembly allows rational design of structures on the micrometer and submicrometer scale. One architecture that can generate complete three-dimensional photonic bandgaps is the diamond cubic lattice, which has remained difficult to realize at length scales comparable with the wavelength of visible or ultraviolet light. In this work, we demonstrate three-dimensional photonic crystals self-assembled from DNA origami that act as precisely programmable patchy colloids. Our DNA-based nanoscale tetrapods crystallize into a rod-connected diamond cubic lattice with a periodicity of 170 nanometers. This structure serves as a scaffold for atomic-layer deposition of high–refractive index materials such as titanium dioxide, yielding a tunable photonic bandgap in the near-ultraviolet.
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