Vaculovičová Markéta, Akther Mahbub, Maaskant Pleun, Brabazon Dermot, Macka Mirek
Irish Separation Science Cluster, National Centre for Sensor Research and School of Chemical Sciences, Dublin City University, Dublin 9, Ireland; Australian Centre for Research on Separation Science and School of Chemistry, University of Tasmania, Private Bag 75, Hobart 7001, Australia; Central European Institute of Technology, Brno University of Technology, Technicka 3058/10, CZ-616 00 Brno, Czech Republic.
Tyndall National Institute, Dyke Parade, University College Cork, Cork, Ireland.
Anal Chim Acta. 2015 Apr 29;871:85-92. doi: 10.1016/j.aca.2015.02.044. Epub 2015 Feb 18.
In this work, a new type of miniaturized fibre-coupled solid-state light source is demonstrated as an excitation source for fluorescence detection in capillary electrophoresis. It is based on a parabolically shaped micro-light emitting diode (μ-LED) array with a custom band-pass optical interference filter (IF) deposited at the back of the LED substrate. The GaN μ-LED array consisted of 270 individual μ-LED elements with a peak emission at 470 nm, each about 14 μm in diameter and operated as a single unit. Light was extracted through the transparent substrate material, and coupled to an optical fibre (OF, 400 μm in diameter, numerical aperture NA=0.37), to form an integrated μ-LED-IF-OF light source component. This packaged μ-LED-IF-OF light source emitted approximately 225 μW of optical power at a bias current of 20 mA. The bandpass IF filter was designed to reduce undesirable LED light emissions in the wavelength range above 490 nm. Devices with and without IF were compared in terms of the optical power output, spectral characteristics as well as LOD values. While the IF consisted of only 7.5 pairs (15 layers) of SiO2/HfO2 layers, it resulted in an improvement of the baseline noise as well as the detection limit measured using fluorescein as test analyte, both by approximately one order of magnitude, with a LOD of 1×10(-8) mol L(-1) obtained under optimised conditions. The μ-LED-IF-OF light source was then demonstrated for use in capillary electrophoresis with fluorimetric detection. The limits of detection obtained by this device were compared to those obtained with a commercial fibre coupled LED device.
在这项工作中,展示了一种新型的小型化光纤耦合固态光源,作为毛细管电泳中荧光检测的激发源。它基于一个抛物面形状的微型发光二极管(μ-LED)阵列,在LED衬底背面沉积了定制的带通光学干涉滤光片(IF)。氮化镓μ-LED阵列由270个单独的μ-LED元件组成,峰值发射波长为470nm,每个元件直径约14μm,作为一个单元运行。光通过透明衬底材料提取,并耦合到一根光纤(OF,直径400μm,数值孔径NA = 0.37),以形成一个集成的μ-LED-IF-OF光源组件。这个封装好的μ-LED-IF-OF光源在20mA的偏置电流下发射约225μW的光功率。带通IF滤光片的设计目的是减少波长在490nm以上范围内不需要的LED光发射。对有IF和没有IF的器件在光功率输出、光谱特性以及检测限(LOD)值方面进行了比较。虽然IF仅由7.5对(15层)SiO₂/HfO₂层组成,但它使基线噪声以及使用荧光素作为测试分析物测得的检测限都得到了改善,两者都提高了约一个数量级,在优化条件下获得的检测限为1×10⁻⁸mol L⁻¹。然后展示了μ-LED-IF-OF光源在毛细管电泳荧光检测中的应用。将该器件获得的检测限与使用商用光纤耦合LED器件获得的检测限进行了比较。