Mai Yonglin, Debruille Kurt, Mikhail Ibraam, Gupta Vipul, Murray Eoin, Frantsuzov Roman, Paull Brett
Australian Centre for Research on Separation Science, School of Natural Sciences (Chemistry), University of Tasmania, Hobart, Australia.
Research & Development, Aquamonitrix Ltd., Tullow, Ireland.
J Sep Sci. 2025 Apr;48(4):e70134. doi: 10.1002/jssc.70134.
With the increasing environmental pollution issues, there is a growing need for sensitive and real-time monitoring of pollutants. Nitrite and nitrate are common nutrients that are related to water quality. This study aims to enhance nitrate and nitrite detection capabilities using a portable ion chromatography-based nutrient analyzer, Aquamonitrix. By optimizing it for ultra-low detection limits (LODs), we address challenges in environmental water quality assessment in Tasmania, Australia. Using step-gradient mode with a stereolithography three-dimensional printed flow cell with a 5 cm optical path length, a 300 µL injection loop, and 60 mM KOH as eluent, LODs of 0.004 µg/mL for nitrite and 0.023 µg/mL for nitrate were achieved. Further improving to 0.008 µg/mL for nitrate with a 10 cm optical path length flow cell and 120 mM NaCl as eluent. A repeatability assessment over 84 automatic runs showed a relative standard deviation under 1.42% for peak area and 0.49% for retention time. The system demonstrated tolerance to salinity, handling up to 5 parts per thousand in artificial seawater. Comparative analysis of environmental samples revealed that nitrate levels in Tasmanian rainwater were five times lower than in Ireland. An average concentration of 2.08 µg/mL nitrate was found in Tamar River samples, aligning with local commercial lab data. Real-time, on-site analysis along the Derwent River detected an average nitrate concentration of 0.17 µg/mL. Validation against conventional standard ion chromatography showed no significant differences (p > 0.05), underscoring Aquamonitrix's robustness for field-based water quality monitoring. A 5-day deployment of Aquamonitrix further demonstrated the system's reliability under significant temperature fluctuations between day and night.
随着环境污染问题日益严重,对污染物进行灵敏且实时监测的需求也在不断增长。亚硝酸盐和硝酸盐是与水质相关的常见营养物质。本研究旨在使用基于便携式离子色谱的营养分析仪Aquamonitrix提高硝酸盐和亚硝酸盐的检测能力。通过将其优化至超低检测限,我们应对了澳大利亚塔斯马尼亚州环境水质评估中的挑战。使用具有5厘米光程长度的立体光刻三维打印流通池、300微升进样环以及60毫摩尔/升氢氧化钾作为洗脱液的梯度洗脱模式,实现了亚硝酸盐检测限为0.004微克/毫升,硝酸盐检测限为0.023微克/毫升。使用10厘米光程长度的流通池和120毫摩尔/升氯化钠作为洗脱液,硝酸盐检测限进一步提高至0.008微克/毫升。在84次自动运行中进行的重复性评估显示,峰面积的相对标准偏差低于1.42%,保留时间的相对标准偏差低于0.49%。该系统表现出对盐度的耐受性,可处理人工海水中高达千分之五的盐度。对环境样品的对比分析表明,塔斯马尼亚州雨水中的硝酸盐水平比爱尔兰低五倍。在塔玛河样品中发现硝酸盐的平均浓度为2.08微克/毫升,与当地商业实验室数据一致。沿德文特河进行的实时现场分析检测到硝酸盐的平均浓度为0.17微克/毫升。与传统标准离子色谱法的验证结果显示无显著差异(p>0.05),这突出了Aquamonitrix在现场水质监测方面的稳健性。Aquamonitrix的5天部署进一步证明了该系统在昼夜之间显著温度波动下的可靠性。