DeVetter Brent M, Bernacki Bruce E, Bennett Wendy D, Schemer-Kohrn Alan, Alvine Kyle J
Pacific Northwest National Laboratory, Energy and Environment Directorate.
Pacific Northwest National Laboratory, Energy and Environment Directorate;
J Vis Exp. 2017 Sep 2(127):56204. doi: 10.3791/56204.
Within recent years, the field of plasmonics has exploded as researchers have demonstrated exciting applications related to chemical and optical sensing in combination with new nanofabrication techniques. A plasmon is a quantum of charge density oscillation that lends nanoscale metals such as gold and silver unique optical properties. In particular, gold and silver nanoparticles exhibit localized surface plasmon resonances-collective charge density oscillations on the surface of the nanoparticle-in the visible spectrum. Here, we focus on the fabrication of periodic arrays of anisotropic plasmonic nanostructures. These half-shell (or nanocup) structures can exhibit additional unique light-bending and polarization-dependent optical properties that simple isotropic nanostructures cannot. Researchers are interested in the fabrication of periodic arrays of nanocups for a wide variety of applications such as low-cost optical devices, surface-enhanced Raman scattering, and tamper indication. We present a scalable technique based on colloidal lithography in which it is possible to easily fabricate large periodic arrays of nanocups using spin-coating and self-assembled commercially available polymeric nanospheres. Electron microscopy and optical spectroscopy from the visible to near-infrared (near-IR) was performed to confirm successful nanocup fabrication. We conclude with a demonstration of the transfer of nanocups to a flexible, conformal adhesive film.
近年来,随着研究人员利用新的纳米制造技术展示出与化学和光学传感相关的令人兴奋的应用,等离子体激元学领域蓬勃发展。等离子体激元是电荷密度振荡的量子,赋予金和银等纳米级金属独特的光学特性。特别是,金和银纳米颗粒在可见光谱中表现出局域表面等离子体共振——纳米颗粒表面的集体电荷密度振荡。在此,我们专注于各向异性等离子体纳米结构周期性阵列的制造。这些半壳(或纳米杯)结构可以展现出简单的各向同性纳米结构所不具备的额外独特的光弯曲和偏振相关光学特性。研究人员对制造用于各种应用(如低成本光学器件、表面增强拉曼散射和篡改指示)的纳米杯周期性阵列感兴趣。我们提出一种基于胶体光刻的可扩展技术,利用旋涂和自组装市售聚合物纳米球,可以轻松制造出大型的纳米杯周期性阵列。进行了从可见光到近红外(近红外)的电子显微镜和光谱分析,以确认纳米杯制造成功。最后,我们展示了将纳米杯转移到柔性、保形的粘合膜上的过程。