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Evanescent-Wave Cavity Ring-Down Spectroscopy for Enhanced Detection of Surface Binding Under Flow Injection Analysis Conditions

机译:消逝波腔衰荡光谱技术,用于在流动注射分析条件下增强对表面结合的检测

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摘要

The feasibility of liquid-phase evanescent-wave cavity ring-down spectroscopy (EW-CRDS) for surface-binding studies under flow-injection analysis (FIA) conditions is demonstrated. The EW-CRDS setup consists of an anti-reflection coated Dove prism inside a linear cavity (with standard or super-polishing of the total internal reflective (TIR) surface). A teflon spacer with an elliptical hole clamped on this surface acts as a 20 μL sized flow cell. The baseline noise of this system is of the order of 10−4 absorbance units; the baseline remains stable over a prolonged time and the prism surface does not become contaminated during repeated injections of the reversibly adsorbing test dyes Crystal Violet (CV) and Direct Red 10 (DR10). At typical FIA or liquid chromatography (LC) flow rates, the system has sufficient specificity to discriminate between species with different surface affinities. For CV a much stronger decrease in ring-down time is observed than calculated based on its bulk concentration and the effective depth probed by the evanescent wave, indicating binding of this positively charged dye to the negatively charged prism surface. The amount of adsorption can be influenced by adjusting the flow rate or the eluent composition. At a flow rate of 0.5 mL/min, an enrichment factor of 60 was calculated for CV; for the poorly adsorbing dye DR10 it is 5. Super-polishing of the already polished TIR surface works counter-productively. The adsorbing dye Crystal Violet has a detection limit of 3 μM for the standard polished surface; less binding occurs on the super-polished surface and the detection limit is 5 μM. Possible applications of EW-CRDS for studying surface binding or the development of bio-assays are discussed.
机译:证明了液相e逝波腔衰荡光谱(EW-CRDS)在流动分析(FIA)条件下进行表面结合研究的可行性。 EW-CRDS装置由线性腔内的防反射涂层Dove棱镜组成(对整个内部反射(TIR)表面进行标准抛光或超抛光)。聚四氟乙烯垫片在其表面上夹有一个椭圆形孔,用作20μL尺寸的流通池。该系统的基线噪声约为10 −4 吸光度单位。基线在较长时间内保持稳定,并且在反复注入可逆吸附的测试染料Crystal Violet(CV)和Direct Red 10(DR10)时,棱镜表面不会被污染。在典型的FIA或液相色谱(LC)流速下,该系统具有足够的特异性来区分具有不同表面亲和力的物质。对于CV,观察到的振铃下降时间比根据其总体浓度和van逝波探测到的有效深度计算出的下降时间要强得多,这表明该带正电的染料与带负电的棱镜表面结合。吸附量可通过调节流速或洗脱液组成来影响。在0.5 mL / min的流速下,CV的富集系数为60;吸附能力差的染料DR10为5。对已抛光的TIR表面进行超抛光会适得其反。吸附染料Crystal Violet对标准抛光表面的检测极限为3μM。在超抛光表面上发生的结合较少,检测极限为5μM。讨论了EW-CRDS在研究表面结合或生物测定方法开发中的可能应用。

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    《Applied Spectroscopy》 |2008年第6期|649-654|共6页
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