Department of Chemistry, King's College London, Britannia House, 7 Trinity Street, London, SE1 1DB, UK.
Analyst. 2019 Nov 7;144(21):6207-6213. doi: 10.1039/c9an01302d. Epub 2019 Oct 1.
A major trend in analytical chemistry is the miniaturization of laboratory instrumentation. We report a pump requiring no power to operate based on the controlled expansion of a pre-pressurised gas for use in portable applications of high-performance liquid chromatography. The performance of the gas pump is characterised and integrated into a compact liquid chromatography system capable of isocratic separations integrating an LED-based UV-absorption detector. The system weighed 6.7 kg when the mobile phase reservoir was fully charged with 150 mL solvent and included an on-board computer to control the system and analyse data. We characterise the flow-rate through chromatography columns with a variety of geometries and packing materials for a range of pressures up to 150 bar. The maximum variation in flow rate was measured to be 6.5 nL min, limited by the resolution of the flow detector. All tests were made on battery power and results are a mixture of those made in the laboratory and in the field. Additionally, we performed a series of 1 m drop tests on the device and show the system's high tolerance to mechanical shocks during operation in the field.
分析化学的一个主要趋势是实验室仪器的小型化。我们报告了一种无需电源即可运行的泵,该泵基于预加压气体的控制膨胀,可用于高性能液相色谱的便携式应用。对气体泵的性能进行了表征,并将其集成到一个紧凑的液相色谱系统中,该系统能够进行等度分离,并集成了基于 LED 的紫外吸收检测器。当流动相储液器充满 150 毫升溶剂时,该系统重 6.7 千克,并包括一台内置计算机来控制系统和分析数据。我们对各种几何形状和填充材料的色谱柱的流速进行了表征,压力范围高达 150 巴。通过流量检测器的分辨率来测量最大流速变化为 6.5 nL min。所有测试均在电池供电下进行,结果是在实验室和现场进行的测试的混合。此外,我们对该设备进行了一系列 1 米跌落测试,并展示了该系统在野外操作时对机械冲击的高度耐受性。