Foundation for Environmental Monitoring, Bangalore, Karnataka, 560001, India.
Department of Civil Engineering, Indian Institute of Technology Kanpur, Kanpur, Uttar Pradesh, 208016, India.
Anal Bioanal Chem. 2021 May;413(13):3455-3469. doi: 10.1007/s00216-021-03291-x. Epub 2021 Apr 2.
Chromium contamination of soil and water is a serious environmental and public health concern as the hexavalent form of chromium [Cr(VI)] is readily soluble in water and is a confirmed carcinogen. There is an imminent need for a robust, low-cost, and simple analytical technique to facilitate in situ monitoring of Cr(VI) in water. Current quantitative methods of Cr(VI) detection are largely laboratory-based, time-consuming, expensive, and require training for implementation. In this contribution, a portable, easy-to-use, and compact measuring tool is presented that provides Cr(VI) concentration within 10 min of water sampling over a linear range of 0-3 mg L. This tool utilizes a relatively inexpensive camera-enabled smartphone with a custom-made test chamber attachment to seamlessly perform Cr(VI) measurements on water samples in the field. For analysis, an android-based software application was developed that directs the user to perform a simple series of steps following the diphenylcarbazide-based colorimetric method prescribed by the American Public Health Association. The tool was validated against a standard UV-visible spectrophotometer for a variety of synthetic and naturally contaminated water samples, with correlation factors greater than 0.993 (p < .001). The colorimetric method was also validated against a non-colorimetric Cr(VI) detection technique-ion chromatography-inductively coupled plasma mass spectrometry. Furthermore, Cr(VI) detection limits for the smartphone-enabled colorimetric method were found to be within 1.3-11.6 μg L, which were significantly better than reported for commercially available field test kits, and even surpassed the limits exhibited by a typical spectrophotometer (25-50 μg L). Finally, real-time mapping of source waters at a contaminated site was demonstrated by remote logging of Cr(VI) water quality data and corresponding GPS coordinates into a cloud server. This study highlights the potential role of smartphone-based monitoring tool in providing information to the affected community and enabling safe access to drinking water. An accurate, robust, simple-to-use, and economic method to measure hexavalent chromium in water within 10 min of sampling at site.
土壤和水中的铬污染是一个严重的环境和公共卫生问题,因为六价铬[Cr(VI)]在水中易溶,并且已被确认为致癌物质。因此,迫切需要一种强大、低成本且简单的分析技术,以方便对水中的 Cr(VI)进行现场监测。目前,Cr(VI)检测的定量方法在很大程度上是基于实验室的,既耗时、昂贵,又需要经过培训才能实施。在本研究中,我们提出了一种便携式、易于使用且紧凑的测量工具,它可以在 10 分钟内对水样进行 Cr(VI)浓度检测,检测范围为 0-3mg/L,呈线性分布。该工具利用相对廉价的带摄像头的智能手机和定制的测试室附件,在现场对水样进行无缝 Cr(VI)测量。为了进行分析,我们开发了一个基于安卓的软件应用程序,该程序指导用户按照美国公共卫生协会规定的基于二苯卡巴肼的比色法执行一系列简单的步骤。该工具通过与标准的紫外可见分光光度计进行比较,对各种合成和天然污染水样进行了验证,相关系数均大于 0.993(p<0.001)。该比色法还通过非比色 Cr(VI)检测技术-离子色谱-电感耦合等离子体质谱进行了验证。此外,我们发现智能手机支持的比色法的 Cr(VI)检测限为 1.3-11.6μg/L,这明显优于市售现场测试试剂盒的检测限,甚至超过了典型分光光度计的检测限(25-50μg/L)。最后,通过将 Cr(VI)水质数据和相应的 GPS 坐标远程记录到云服务器中,实时绘制了污染现场的水源图。本研究强调了基于智能手机的监测工具在向受影响社区提供信息和确保安全饮用水方面的潜在作用。该工具可以在现场采样后 10 分钟内提供准确、强大、易于使用且经济的水中六价铬测量方法。