Nanoelectronics Laboratory, University of Cincinnati, Cincinnati, OH 45221-0030, USA.
Nanoelectronics Laboratory, University of Cincinnati, Cincinnati, OH 45221-0030, USA.
Biosens Bioelectron. 2015 Dec 15;74:150-5. doi: 10.1016/j.bios.2015.06.049. Epub 2015 Jun 20.
The integration of organic light emitting diodes (OLEDs) as excitation light sources for quantum dot-based fluorescent lateral flow immunoassay systems (LFIA) was investigated. This approach has the potential to deliver a sensitive visible detection scheme for low-cost, disposable lab-on-chip point-of-care (POC) diagnosis system. Thin film phosphorescent green OLEDs fabricated on plastic substrates were integrated on-chip to excite the test line of a quantum dot-based LFIA (QD-LFIA). OLEDs were fabricated by sequential deposition of organic thin films (total of ~100 nm) onto ITO-coated PET substrates. CdSe/ZnS QDs emitting at 655 nm and Au nanoparticles (NP - 10 nm size) conjugated antibodies were used for the fluorescence QD-LFIA and conventional reflection-mode Au NP-LFIA, respectively. Thin plastic color light filters were integrated for filtering the excitation light source and, thereby, increasing the contrast of the emitted light for optimized visual detection. Integration of the OLED and color filters with the analytical membrane was achieved using adhesive techniques facilitated by the planar nature of the layers, which suggests possible large scale manufacturing using roll-to-roll processing. Gray scale analysis from digital images captured with a digital camera was used to quantify the visual sensitivity. The signal intensity, signal-to-noise ratio (SNR) and the limit of detection (LOD) of OLED integrated QD-LFIAs were compared to Au NP LFIAs. OLED QD-LFIA exhibited superior performance in all signal aspects: 7-8× higher signal intensity and SNR, and a 7× lower LOD of 3 nM (measured at S/N=3). These results demonstrate the potential of OLED-integrated in LFIA devices for obtaining sensitive, fast and low-cost POC diagnostics.
研究了将有机发光二极管(OLED)集成作为基于量子点的荧光侧向流动免疫分析(LFIA)系统的激发光源。这种方法有可能为低成本、一次性的芯片实验室即时护理(POC)诊断系统提供敏感的可见检测方案。在塑料衬底上制造的薄膜磷光绿色 OLED 被集成在芯片上,以激发基于量子点的 LFIA(QD-LFIA)的测试线。OLED 通过有机薄膜的顺序沉积(总共约 100nm)在 ITO 涂覆的 PET 衬底上制造。发射波长为 655nm 的 CdSe/ZnS QD 和 Au 纳米颗粒(10nm 尺寸)缀合抗体分别用于荧光 QD-LFIA 和传统的反射模式 Au NP-LFIA。集成了薄的塑料彩色滤光片,用于过滤激发光源,从而增加发射光的对比度,以实现优化的视觉检测。通过层的平面性质实现了 OLED 和彩色滤光片与分析膜的集成,这表明可以使用卷对卷处理进行大规模制造。使用数字相机捕获的数字图像的灰度分析用于定量视觉灵敏度。与 Au NP LFIA 相比,对 OLED 集成的 QD-LFIA 的信号强度、信噪比(SNR)和检测限(LOD)进行了评估。OLED-QD-LFIA 在所有信号方面都表现出优异的性能:信号强度和 SNR 分别提高了 7-8 倍,LOD 降低了 7 倍,达到 3 nM(在 S/N=3 时测量)。这些结果表明,OLED 集成在 LFIA 器件中具有获得敏感、快速和低成本 POC 诊断的潜力。