Schultz GA, Corso TN, Prosser SJ, Zhang S
Advanced BioAnalytical Services, Inc., Ithaca, New York 14850, USA.
Anal Chem. 2000 Sep 1;72(17):4058-63. doi: 10.1021/ac000325y.
A novel microfabricated nozzle has been developed for the electrospray of liquids from microfluidic devices for analysis by mass spectrometry. The electrospray device was fabricated from a monolithic silicon substrate using deep reactive ion etching and other standard semiconductor techniques to etch nozzles from the planar surface of a silicon wafer. A channel extends through the wafer from the tip of the nozzle to a reservoir etched into the opposite planar surface of the wafer. Nozzle diameters as small as 15 microm have been fabricated using this method. The microfabricated electrospray device provides a reproducible, controllable, and robust means of producing nano-electrospray of a liquid sample. The electrospray device was interfaced to an atmospheric pressure ionization time-of-flight mass spectrometer using continuous infusion of test compounds at low nanoliter-per-minute flow rates. Nozzle-to-nozzle signal intensity reproducibility using 10 nozzles was demonstrated to be 12% with single-nozzle signal stability routinely less than 4% relative standard deviation (RSD). Solvent compositions have been electrosprayed ranging from 100% organic to 100% aqueous. The signal-to-noise ratio from the infusion of a 10 nM cytochrome c solution in 100% water at 100 nL/min was 450:1. Microchip electrospray nozzles were compared with pulled capillaries for overall sensitivity and signal stability for small and large molecules. The microchip electrospray nozzles showed a 1.5-3-times increase in sensitivity compared with that from a pulled capillary, and signal stability with the microchip was 2-4% RSD compared with 4-10% with a pulled capillary. Electrospray device lifetimes achieved thus far have exceeded 8 h of continuous operation and should be sufficient for typical microfluidic applications. The total volume of the electrospray device is less than 25 pL, making it suitable for combination with microfluidic separation devices.
已开发出一种新型微制造喷嘴,用于从微流控装置中电喷雾液体,以便通过质谱进行分析。该电喷雾装置由单片硅基体制成,采用深反应离子刻蚀和其他标准半导体技术从硅片的平面表面蚀刻出喷嘴。一个通道从喷嘴尖端穿过晶片延伸到蚀刻在晶片相对平面表面的储液器。使用这种方法已制造出直径小至15微米的喷嘴。这种微制造的电喷雾装置提供了一种可重复、可控且稳健的方式来产生液体样品的纳米电喷雾。该电喷雾装置通过以低纳升/分钟的流速连续注入测试化合物,与大气压电离飞行时间质谱仪相连。使用10个喷嘴时,喷嘴间信号强度的重现性被证明为12%,单个喷嘴的信号稳定性通常相对标准偏差(RSD)小于4%。已对从100%有机到100%水的溶剂组合物进行了电喷雾。在100 nL/min流速下,将10 nM细胞色素c溶液注入100%水中时的信噪比为450:1。将微芯片电喷雾喷嘴与拉制毛细管在小分子和大分子的整体灵敏度和信号稳定性方面进行了比较。与拉制毛细管相比,微芯片电喷雾喷嘴的灵敏度提高了1.5至3倍,微芯片的信号稳定性为2 - 4% RSD,而拉制毛细管为4 - 10% RSD。到目前为止,电喷雾装置的使用寿命已超过8小时的连续运行,应该足以满足典型的微流控应用。该电喷雾装置的总体积小于25 pL,使其适合与微流控分离装置结合使用。