Univ Lille Nord de France, UDSL, EA 4481, UFR Pharmacy, 59006 Lille, France.
Univ Lille Nord de France, UDSL, EA 4481, UFR Pharmacy, 59006 Lille, France; Department of Pharmacy, University Hospital, Lille, France.
J Chromatogr A. 2014 Mar 14;1333:124-33. doi: 10.1016/j.chroma.2014.01.054. Epub 2014 Jan 29.
The aim of this work was to elucidate the effects of parameters influencing the evaporative light scattering detector (ELSD) response when it was coupled to supercritical fluid chromatography (SFC). Phthalates, currently used as plasticizers in medical devices, were selected as model compounds. The configuration of the hyphenation setup was firstly optimized and shown that both peak efficiency and sensitivity were improved by connecting the ELSD to the SFC before the back pressure regulator (BPR). By using a tee-junction which splits the flow after the PDA towards the collect fraction (or waste) and the ELSD, this instrument configuration has the advantage to be applicable for small-scale preparative SFC. The impacts of other parameters such as mobile phase composition and flow rate, outlet pressure, column oven temperature and ELSD drift tube temperature on the ELSD signal were evaluated using a chemometric approach. First, it was demonstrated that a classical mobile phase composed of CO2-methanol 90:10 (v/v) was suitable to obtain great nebulization efficiency. The flow rate of the eluent was the second main effect factor. The setting must be as low as possible to avoid the loss of large particle size in the drift tube resulting in a loss of signal intensity. Concerning the outlet pressure, the configuration of the setup between SFC and ELSD requires a setting as high as possible to limit the partial liquid-vapor separation of the mobile phase in the restrictor tube. Finally, due to the low quantity of solvent which must be evaporated in the detector, a drift tube temperature of 25 °C is suitable for the hyphenation of ELSD to SFC. In the optimized conditions, the proposed SFC/ELSD method could be suitable to quantify plasticizers in medical devices.
本工作旨在阐明在将蒸发光散射检测器 (ELSD) 与超临界流体色谱 (SFC) 偶联时影响 ELSD 响应的参数的影响。选择邻苯二甲酸酯作为模型化合物,这些化合物目前用作医疗器械中的增塑剂。首先优化了连接装置的配置,并表明通过将 ELSD 连接到 SFC 之前的背压调节器 (BPR),可以提高峰效率和灵敏度。通过使用三通将 PDA 之后的流动分为收集部分(或废物)和 ELSD,这种仪器配置具有适用于小规模制备 SFC 的优点。使用化学计量学方法评估了其他参数(如流动相组成和流速、出口压力、柱箱温度和 ELSD 漂移管温度)对 ELSD 信号的影响。首先,证明了由 CO2-甲醇 90:10 (v/v) 组成的经典流动相适合获得高雾化效率。洗脱液的流速是第二个主要影响因素。设置必须尽可能低,以避免在漂移管中损失大粒径,从而导致信号强度损失。关于出口压力,SFC 和 ELSD 之间的装置配置需要尽可能高的设置,以限制限制器管中流动相的部分液-气相分离。最后,由于在检测器中必须蒸发的溶剂量低,漂移管温度为 25°C 适合 SFC/ELSD 偶联。在优化的条件下,所提出的 SFC/ELSD 方法可适用于医疗器械中增塑剂的定量分析。