Dawson Harry, Elias Jinane, Etienne Pascal, Calas-Etienne Sylvie
Laboratoire Charles Coulomb (L2C), Université de Montpellier, CNRS, 34095 Montpellier, France.
Micromachines (Basel). 2021 Nov 28;12(12):1467. doi: 10.3390/mi12121467.
The integration of optical circuits with microfluidic lab-on-chip (LoC) devices has resulted in a new era of potential in terms of both sample manipulation and detection at the micro-scale. On-chip optical components increase both control and analytical capabilities while reducing reliance on expensive laboratory photonic equipment that has limited microfluidic development. Notably, in-situ LoC devices for bio-chemical applications such as diagnostics and environmental monitoring could provide great value as low-cost, portable and highly sensitive systems. Multiple challenges remain however due to the complexity involved with combining photonics with micro-fabricated systems. Here, we aim to highlight the progress that optical on-chip systems have made in recent years regarding the main LoC applications: (1) sample manipulation and (2) detection. At the same time, we aim to address the constraints that limit industrial scaling of this technology. Through evaluating various fabrication methods, material choices and novel approaches of optic and fluidic integration, we aim to illustrate how optic-enabled LoC approaches are providing new possibilities for both sample analysis and manipulation.
光电路与微流控芯片实验室(LoC)设备的集成,在微尺度上的样品处理和检测方面开启了一个充满潜力的新时代。片上光学组件增强了控制和分析能力,同时减少了对限制微流控发展的昂贵实验室光子设备的依赖。值得注意的是,用于诊断和环境监测等生化应用的原位LoC设备,作为低成本、便携式和高灵敏度的系统,可能具有巨大价值。然而,由于将光子学与微制造系统相结合所涉及的复杂性,仍然存在多重挑战。在此,我们旨在突出近年来光学片上系统在主要的LoC应用方面取得的进展:(1)样品处理和(2)检测。同时,我们旨在解决限制该技术工业规模扩大的制约因素。通过评估各种制造方法、材料选择以及光学和流体集成的新颖方法,我们旨在说明基于光学的LoC方法如何为样品分析和处理提供新的可能性。