Femtosecond laser fabrication of optical sensors integrated in a lab-on-a-chip

A. Crespi, Y. Gu, N. Bellini, K. Vishnubhatla, R. Ramponi, R. Osellame, G. Cerullo
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引用次数: 3

Abstract

Lab-on-a-chips (LOCs) are becoming one of the most powerful tools of analytical chemistry, with a broad application in life sciences, biotechnology and drug development. They incorporate in a single substrate the functions of a biological laboratory (i.e. microfluidic channels, reservoirs, valves, pumps and sensors). Their main advantages include the possibility of working with small sample quantities (from nano- to picoliters), high sensitivity, speed of analysis and the possibility of measurement automation and standardization. Direct on-chip integration of photonic devices for detection of biomolecules flowing in the microchannels is one of the main objectives of current research in this field, which becomes particularly challenging in case of analytes that cannot be chemically labeled. In fact in this case an interferometric detection is often needed and optical devices, such as interferometers, have to be integrated. Ultrafast laser writing of waveguides in glasses proves to be a very flexible, simple and well suited method also for this kind of applications. As a post-processing technique it doesn't affect the fabrication of the fluidic part and its unique three-dimensional capabilities allow realization of devices with complex design. In this work we report on the use of femtosecond laser pulses to fabricate a Mach-Zehnder interferometer, integrated with a microfluidic channel; this provides label-free sensing, by means of refractive index measurements, of samples flowing in the microchannel.
飞秒激光制造集成在片上实验室的光学传感器
芯片实验室(lab -on-a-chip, loc)正在成为分析化学中最强大的工具之一,在生命科学、生物技术和药物开发中有着广泛的应用。它们将生物实验室的功能(即微流控通道、储液器、阀门、泵和传感器)集成在一个衬底中。它们的主要优点包括可以处理小样本量(从纳米到皮升)、高灵敏度、分析速度以及测量自动化和标准化的可能性。在芯片上直接集成光子器件来检测在微通道中流动的生物分子是当前该领域研究的主要目标之一,在无法进行化学标记的分析物的情况下,这变得特别具有挑战性。事实上,在这种情况下,通常需要干涉检测,并且必须集成光学设备,例如干涉仪。超快激光在玻璃中写入波导被证明是一种非常灵活,简单和非常适合这种应用的方法。作为一种后处理技术,它不影响流体部分的制造,其独特的三维能力允许实现复杂设计的设备。在这项工作中,我们报告了使用飞秒激光脉冲来制造带有微流体通道的马赫-曾德尔干涉仪;这提供了无标签的传感,通过折射率测量,在微通道中流动的样品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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