Department of Chemistry and Institute for Soldier Nanotechnology, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States.
Department of Chemical and Environmental Engineering, University of Arizona, 1133 E. James E. Rogers Way, Tucson, Arizona 85721, United States.
ACS Sens. 2020 Jul 24;5(7):1996-2002. doi: 10.1021/acssensors.0c00399. Epub 2020 May 22.
Despite the recent emergence of microcavity resonators as label-free biological and chemical sensors, practical applications still require simple and robust methods to impart chemical selectivity and reduce the cost of fabrication. We introduce the use of hydrocarbon-in-fluorocarbon-in-water (HC/FC/W) double emulsions as a liquid top cladding that expands the versatility of optical resonators as chemical sensors. The all-liquid complex emulsions are tunable droplets that undergo dynamic and reversible morphological transformations in response to a change in the chemical environment (., exposure to targeted analytes). This chemical-morphological coupling drastically modifies the effective refractive index, allowing the complex emulsions to act as a chemical transducer and signal amplifier. We detect this large change in the refractive index by tracking the shift of the enveloped resonant spectrum of a silicon nitride (SiN) racetrack resonator-based sensor, which correlates well with a change in the morphology of the complex droplets. This combination of soft materials (dynamic complex emulsions) and hard materials (on-chip resonators) provides a unique platform for liquid-phase, real-time, and continuous detection of chemicals and biomolecules for miniaturized and remote, environmental, medical, and wearable sensing applications.
尽管微腔共振器作为无标记生物和化学传感器最近已经出现,但实际应用仍需要简单而稳健的方法来赋予化学选择性并降低制造成本。我们介绍了使用碳氢氟碳水中(HC/FC/W)双乳液作为液体顶层覆盖物,这扩展了光学谐振器作为化学传感器的多功能性。全液体复合乳液是可调谐的液滴,可在化学环境变化(例如,暴露于目标分析物)时发生动态和可逆的形态转变。这种化学形态耦合会剧烈改变有效折射率,使复合乳液能够充当化学传感器和信号放大器。我们通过跟踪基于氮化硅 (SiN) 跑道型谐振器的传感器的包络共振光谱的位移来检测折射率的这种大变化,该位移与复合液滴的形态变化很好地相关。这种软材料(动态复合乳液)和硬材料(片上谐振器)的组合为化学和生物分子的液相、实时和连续检测提供了独特的平台,适用于小型化、远程、环境、医疗和可穿戴传感应用。