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Polymer biophotonic lab-on-a-chip devices with integrated organic semiconductor lasers

机译:具有集成有机半导体激光器的聚合物生物光子片上实验室设备

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We present optofluidic lab-on-a-chip devices (LOCs) for single use as disposables. In our approach we are aiming for systems out of poly(methyl methacrylate) (PMMA) that integrate (a) organic lasers, (b) optical waveguides, (c) microfluidic channels, (d) surface functionalization, and (e) fluorescence excitation on one single chip. We are utilizing mass production techniques to show the applicability of this approach by avoiding electrical interconnects but using optical and fluidic interfaces only. With our experiments we can show the feasibility of this approach by respectively combining two consecutive elements (a - e) of the path of light: Organic semiconductor lasers are integrated by evaporating a thin film of photoactive material on top of a distributed feedback (DFB) grating. For this purpose, grating masters are replicated by hot embossing into PMMA bulk material. The lasing wavelength in the visible light regime is tuned by altering the thickness of the vacuum deposited organic semiconductor active material or the DFB grating period. Emitted light from the DFB laser is coupled into polymer strip optical waveguides realized by Deep UV lithography. The waveguides allow optical guidance to a microfluidic channel. Tailored surface functionalization in the microfluidic channel by Dip-Pen Nanolithography (DPN) enables the local excitation of fluorescent markers and thus a detection of selected components in biomedical or environmentally relevant fluids.
机译:我们提出了一次性使用的光流芯片实验室设备(LOC)。在我们的方法中,我们的目标是采用聚甲基丙烯酸甲酯(PMMA)以外的系统,该系统集成了(a)有机激光器,(b)光波导,(c)微流体通道,(d)表面功能化和(e)荧光激发在一个芯片上。我们正在利用批量生产技术,通过避免电气互连而仅使用光学和流体接口来显示这种方法的适用性。通过我们的实验,我们可以通过分别组合光路的两个连续元素(a-e)来证明这种方法的可行性:通过在分布式反馈(DFB)上蒸发光敏材料的薄膜来集成有机半导体激光器光栅。为此,通过热压印将光栅原版复制到PMMA块状材料中。通过改变真空沉积的有机半导体活性材料的厚度或DFB光栅周期来调整可见光范围内的激光波长。 DFB激光器发出的光被耦合到通过深紫外光刻技术实现的聚合物条形光波导中。波导允许光学引导至微流体通道。通过浸渍笔纳米光刻(DPN)在微流体通道中进行的定制表面功能化可以实现荧光标记的局部激发,从而可以检测生物医学或环境相关流体中的选定成分。

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