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用于便携式微流控芯片应用的无电池全集成微流控光源。

Battery-free fully integrated microfluidic light source for portable lab-on-a-chip applications.

机构信息

Center for Nano Science and Technology@PoliMi, Istituto Italiano Di Tecnologia, via Pascoli 70/3, 20133, Milan, Italy.

Dipartimento Di Fisica, Politecnico Di Milano, Piazza Leonardo da Vinci 32, 20133, Milan, Italy.

出版信息

Sci Rep. 2020 Jul 31;10(1):12910. doi: 10.1038/s41598-020-69581-z.

Abstract

Integrating a light source inside a Lab-on-a-Chip (LOC) platform has always been as challenging as much as an appealing task. Besides the manufacturing issues, one of the most limiting aspects is due to the need for an energy source to feed the light emission. A solution independent of external energy sources can be given by Chemiluminescence (CL): a well-known chemical phenomenon in which light emission is achieved because of a chemical reaction. Here we present the fabrication and the characterization of a chemiluminescent light source, fully integrated on a microfluidic platform by means of the direct writing technique known as Femtosecond Laser Micromachining. The key advantage is the possibility to insert within LOC devices light sources with complete placement freedom in 3D, wide flexibility of the emitting source geometry and no external feeding energy. The characterization is carried out by investigating the effect of confining a chemiluminescent rubrene-based reaction in small volumes and the inject pressures impact on the emission spectra. Moreover, exploiting microfluidics principles, it's possible to move from the typical flash-type CL emission to a prolonged one (several hours). This allows to disengage bulky, external light sources, adding an extra step on the road to real device portability.

摘要

将光源集成到芯片实验室 (LOC) 平台中一直是一项极具挑战性和吸引力的任务。除了制造问题外,最具限制的方面之一是由于需要能源来供发光。化学发光 (CL) 可以提供一种独立于外部能源的解决方案:这是一种众所周知的化学现象,其中由于化学反应而实现发光。在这里,我们展示了一种化学发光光源的制造和特性,该光源通过称为飞秒激光微加工的直接写入技术完全集成在微流控平台上。其主要优势在于可以在 LOC 设备中插入具有完全 3D 放置自由度、发射源几何形状高度灵活且无需外部供能的光源。通过研究将基于芘的化学发光反应限制在小体积中和注入压力对发射光谱的影响来进行特性分析。此外,利用微流控原理,可以将典型的闪光型 CL 发射转换为延长的发射(数小时)。这使得能够脱离笨重的外部光源,在实现真正的设备便携性方面又迈出了一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/646e/7395173/86f9c1993cd1/41598_2020_69581_Fig1_HTML.jpg

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