Chang Te-Wei, Gartia Manas Ranjan, Seo Sujin, Hsiao Austin, Liu Gang Logan
Department of Electrical and Computer Engineering, Micro and Nanotechnology Laboratory, University of Illinois at Urbana Champaign, Urbana, IL, 61801, USA.
Nanotechnology. 2014 Apr 11;25(14):145304. doi: 10.1088/0957-4484/25/14/145304. Epub 2014 Mar 14.
A tunable lithography-less nanofabrication process using a metal thin-film thermal dewetting technique has been developed to fabricate wafer-scale and uniform plasmonic substrates at low cost for optimal performance in surface enhanced Raman scattering (SERS) applications. The relationship between the tunable parameters of this process and the corresponding optical and plasmonic characteristic is investigated both experimentally and theoretically to understand the deterministic design of an optimal SERS device with a three-dimensional plasmonic nanoantenna structure. The enhancement of SERS using various nanoplasmonic particle sizes, structure lengths, lateral hot spot spacings and resonating effects are examined and demonstrated. We achieve a uniform optimal enhancement factor of 1.38 × 10(8) on a 4 in wafer-scale SERS substrate with a backplane-assisted resonating nanoantenna array design. Sensitive environmental nitrate sensing, vitamin detection and oligonucleotide identification are demonstrated on the high-performance SERS device.
已开发出一种使用金属薄膜热去湿技术的可调谐无光刻纳米制造工艺,以低成本制造晶圆级且均匀的等离子体基底,从而在表面增强拉曼散射(SERS)应用中实现最佳性能。通过实验和理论研究了该工艺的可调参数与相应光学和等离子体特性之间的关系,以了解具有三维等离子体纳米天线结构的最佳SERS器件的确定性设计。研究并展示了使用各种纳米等离子体颗粒尺寸、结构长度、横向热点间距和共振效应增强SERS的情况。通过背板辅助共振纳米天线阵列设计,我们在4英寸晶圆级SERS基底上实现了1.38×10⁸的均匀最佳增强因子。在高性能SERS器件上展示了灵敏的环境硝酸盐传感、维生素检测和寡核苷酸鉴定。