Department of Environmental Science , University of Liverpool , Brownlow Hill , Liverpool L69 7ZX , United Kingdom.
Department of Health and Environmental Sciences , Xi'an Jiaotong-Liverpool University , 111 Ren'ai Road , Suzhou , Jiangsu 215123 , P. R. China.
Environ Sci Technol. 2019 May 7;53(9):5124-5132. doi: 10.1021/acs.est.8b05390. Epub 2019 Apr 19.
In flooded soils, soil-water interface (SWI) is the key zone controlling biogeochemical dynamics. Chemical species and concentrations vary greatly at micro- to cm-scales. Techniques able to track these changing element profiles both in space and over time with appropriate resolution are rare. Here, we report a patent-pending technique, the Integrated Porewater Injection (IPI) sampler, which is designed for soil porewater sampling with minimum disturbance to saturated soil environment. IPI sampler employs a single hollow fiber membrane tube to passively sample porewater surrounding the tube. When working, it can be integrated into the sample introduction system, thus the sample preparation procedure is dramatically simplified. In this study, IPI samplers were coupled to ICP-MS at data-only mode. The limits of detection of IPI-ICP-MS for Ni, As, Cd, Sb, and Pb were 0.12, 0.67, 0.027, 0.029, and 0.074 μg·L, respectively. Furthermore, 25 IPI samplers were assembled into an SWI profiler using 3D printing in a one-dimensional array. The SWI profiler is able to analyze element profiles at high spatial resolution (∼2 mm) every ≥24 h. When deployed in arsenic-contaminated paddy soils, it depicted the distributions and dynamics of multiple elements at anoxic-oxic transition. The results show that the SWI profiler is a powerful and robust technique in monitoring dynamics of element profile in soil porewater at high spatial resolution. The method will greatly facilitate studies of elements behaviors in sediments of wetland, rivers, lakes, and oceans.
在水淹土壤中,土壤-水界面(SWI)是控制生物地球化学动力学的关键区域。在微观到厘米尺度上,化学物质的种类和浓度变化很大。能够以适当的分辨率在空间和时间上跟踪这些变化元素分布的技术很少。在这里,我们报告了一种专利申请中的技术,即集成孔隙水注入(IPI)采样器,该技术专为最小化对饱和土壤环境干扰的土壤孔隙水采样而设计。IPI 采样器采用单个中空纤维膜管来被动采样管周围的孔隙水。工作时,它可以集成到样品引入系统中,从而大大简化了样品制备程序。在这项研究中,IPI 采样器与 ICP-MS 耦合在仅数据模式下工作。IPI-ICP-MS 对 Ni、As、Cd、Sb 和 Pb 的检测限分别为 0.12、0.67、0.027、0.029 和 0.074 μg·L。此外,25 个 IPI 采样器使用 3D 打印在一维阵列中组装成一个 SWI 剖面仪。SWI 剖面仪能够以高空间分辨率(约 2mm)每≥24 小时分析元素分布。当部署在砷污染稻田土壤中时,它描绘了缺氧-好氧过渡带中多种元素的分布和动态。结果表明,SWI 剖面仪是一种强大而稳健的技术,可用于监测土壤孔隙水中元素分布的动态,具有高空间分辨率。该方法将极大地促进湿地、河流、湖泊和海洋沉积物中元素行为的研究。