Chemical Oceanography, Marine Biogeochemistry, GEOMAR Helmholtz Centre for Ocean Research Kiel, Kiel, Germany.
National Oceanography Centre, Southampton, SO14 3ZH, UK.
Sci Rep. 2021 Jan 27;11(1):2382. doi: 10.1038/s41598-021-81779-3.
A spectrophotometric approach for quantification of dissolved manganese (DMn) with 1-(2-pyridylazo)-2-naphthol (PAN) has been adapted for in situ application in coastal and estuarine waters. The analyser uses a submersible microfluidic lab-on-chip device, with low power (~ 1.5 W) and reagent consumption (63 µL per sample). Laboratory characterization showed an absorption coefficient of 40,838 ± 1127 L⋅mol⋅cm and a detection limit of 27 nM, determined for a 34.6 mm long optical detection cell. Laboratory tests showed that long-term stability of the PAN reagent was achieved by addition of 4% v/v of a non-ionic surfactant (Triton-X100). To suppress iron (Fe) interferences with the PAN reagent, the Fe(III) masking agents deferoxamine mesylate (DFO-B) or disodium 4,5-dihydroxy-1,3-benzenedisulfonate (Tiron) were added and their Fe masking efficiencies were investigated. The analyser was tested during a deployment over several weeks in Kiel Fjord (Germany), with successful acquisition of 215 in situ data points. The time series was in good agreement with DMn concentrations determined from discretely collected samples analysed via inductively coupled plasma mass spectrometry (ICP-MS), exhibiting a mean accuracy of 87% over the full deployment duration (with an accuracy of > 99% for certain periods) and clear correlations to key hydrographic parameters.
一种基于 1-(2-吡啶偶氮)-2-萘酚(PAN)分光光度法的溶解锰(DMn)定量方法已被改编为用于沿海和河口水域的原位应用。该分析仪采用潜水式微流控芯片实验室设备,功率低(约 1.5 W),试剂消耗少(每个样品 63 µL)。实验室特性研究表明,在 34.6 毫米长的光检测池内,吸光系数为 40,838 ± 1127 L⋅mol⋅cm,检测限为 27 nM。实验室测试表明,通过添加 4% v/v 的非离子表面活性剂(Triton-X100),可以实现 PAN 试剂的长期稳定性。为了抑制铁(Fe)与 PAN 试剂的干扰,添加了铁(III)掩蔽剂甲磺酸去铁胺(DFO-B)或 4,5-二羟基-1,3-苯二磺酸钠(Tiron),并研究了它们的 Fe 掩蔽效率。该分析仪在基尔湾(德国)进行了数周的部署测试,成功获取了 215 个原位数据点。时间序列与通过电感耦合等离子体质谱(ICP-MS)分析离散采集样品得到的 DMn 浓度非常吻合,在整个部署期间的平均准确度为 87%(某些时间段的准确度>99%),并与关键水文学参数有明显相关性。