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Mapping of potential gradients within the electrospray emitter

机译:电喷雾发射器内电势梯度的映射

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A novel electrochemical probe has been designed, built, and used to characterize the distribution in solution potential within the metal capillary and Taylor cone of the electrospray (ES) device. The measurement system consists of three electrodes-a counter electrode held at highly negative potential that serves as the cathode, and two anodes consisting of a disk-shaped, mobile, internal (working) electrode, and the internal surface of the surrounding ES capillary (auxiliary electrode, held at ground potential). One-dimensional differential electrospray emitter potential (DEEP) maps detailing solution potential gradients within the electrospray emitter and in the region of the Taylor cone are constructed by measuring the potential at the working electrode vs the ES capillary, as a function of working electrode position along the emitter axis. Results show that the measured potential difference increases as the internal probe travels toward the ES capillary exit, with values rising sharply as the base of the Taylor cone is penetrated. Higher conductivity solutions exhibit potentials of higher magnitude at longer distances away from the counter electrode, but these same solutions show lower potentials near the ES capillary exit. Removal of easily oxidizable species from the solution causes the measured potential difference to have nonzero values at distances further within the capillary, and the values measured at all points are raised. Results are consistent with the characterization of the electrospray system as a controlled-current electrolytic flow cell. Elucidation of the electrochemical details of the electrospray process can lead to mass spectrometric signal enhancement of certain species present in the spraying liquid and also allow the detection of molecules that are usually not observable due to their low ionization efficiencies. [References: 38]
机译:已经设计,制造了一种新型的电化学探针,并将其用于表征电喷雾(ES)设备的金属毛细管和泰勒锥内溶液电势的分布。测量系统由三个电极组成:一个保持在高负电势的对电极作为阴极,两个阳极由一个盘形,可移动的内部(工作)电极和周围的ES毛细管的内表面组成(辅助电极,保持在地电位)。一维差分电喷雾发射极电势(DEEP)映射,详细描述了电喷雾发射极内和泰勒锥区域内的溶液电势梯度,方法是测量工作电极与ES毛细管之间的电势,作为工作电极位置沿发射器轴。结果表明,当内部探头向ES毛细管出口移动时,测得的电势差会增加,而随着泰勒锥底的穿透,电势差会急剧增加。较高电导率的溶液在距反电极较远的距离处显示较高的电势,但这些相同的溶液在ES毛细管出口附近显示较低的电势。从溶液中除去容易氧化的物质会使所测得的电势差在毛细管内更远的距离处具有非零值,并且在所有点处测得的值都会升高。结果与电喷雾系统作为控制电流电解流动池的特性一致。对电喷雾过程的电化学细节的阐明可导致存在于喷射液体中的某些物质的质谱信号增强,并且还允许检测由于其低电离效率而通常无法观察到的分子。 [参考:38]

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