School of Engineering, University of CA Santa Cruz, 1156 High Street, Santa Cruz, CA 95064, USA.
Lab Chip. 2012 Oct 7;12(19):3728-33. doi: 10.1039/c2lc40700k.
We present the first integration of fluidically tunable filters with a separate particle detection channel on a single planar, optofluidic chip. Two optically connected, but fluidically isolated liquid-core antiresonant reflecting optical waveguide (ARROW) segments serve as analyte and spectral filter sections, respectively. Ultrasensitive detection of fluorescent nanobeads with high signal-to-noise ratio provided by a fluidically tuned excitation notch filter is demonstrated. In addition, reconfigurable filter response is demonstrated using both core index tuning and bulk liquid tuning. Notch filters with 43 dB rejection ratio and a record 90 nm tuning range are implemented by using different mixtures of ethylene glycol and water in the filter section. Moreover, absorber dyes and liquids with pH-dependent transmission in the filter channel provide additional spectral control independent of the waveguide response. Using both core index and pH control, independent filter tuning at multiple wavelengths is demonstrated for the first time. This extensive on-chip control over spectral filtering as one of the fundamental components of optical particle detection techniques offers significant advantages in terms of compactness, cost, and simplicity, and opens new opportunities for waveguide-based optofluidic analysis systems.
我们首次在单个平面光流控芯片上实现了流态可调滤波器与独立粒子检测通道的集成。两个光连接但流态隔离的液体芯反共振反射光学波导(ARROW)段分别作为分析物和光谱滤波器部分。通过流体调谐激发陷波滤波器实现了对荧光纳米珠的超高灵敏度检测,该滤波器具有高信噪比。此外,还通过芯折射率调谐和体液体调谐演示了可重构的滤波器响应。通过在滤波器部分使用不同比例的乙二醇和水混合物,实现了具有 43 dB 抑制比和创纪录的 90nm 调谐范围的陷波滤波器。此外,滤波器通道中的吸收染料和 pH 依赖性传输液体提供了与波导响应无关的附加光谱控制。首次使用芯折射率和 pH 控制,在多个波长上实现了独立的滤波器调谐。这种对光学粒子检测技术基本组成部分之一的光谱滤波的广泛的片上控制,在紧凑性、成本和简单性方面具有显著优势,并为基于波导的光流控分析系统开辟了新的机会。