Real-time smartphone-based multi-parameter detection of nitrite, ammonia nitrogen, and total phosphorus in water.

IF 2.7 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Hao-Yu Zhang, Yan Zhang, Dengni Lai, Li-Qun Chen, Le-Qian Zhou, Chang-le Tao, Zhou Fang, Rui-Rui Zhu, Wen-Qi Long, Jun-Wu Liu, Ying-Chun Fang, Jia Zhao, Zhi-Bin Wu, Lin Luo, Yuan Yang
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Abstract

Elevated levels of ammonia nitrogen and phosphorus trigger eutrophication, spurring algal blooms, depleting oxygen, and thereby degrading water quality and killing fish. Nitrites, toxic to humans and animals, contaminate water sources when present in excess, making the water unfit for drinking and making their removal via standard treatments challenging. Together, these factors severely endanger aquatic life, human health, and water safety. Thus, developing on-site quantitative methods for the determination of nitrite, ammonia nitrogen, and total phosphorus in environmental waters is of great significance for environmental monitoring agencies. This study introduces a fast, cost-effective, and flexible on-site testing method that leverages a smartphone and a self-designed 3D-printed portable device to detect nitrite, ammonia nitrogen, and total phosphorus in environmental water. This constitutes an on-site analysis approach as it involves portable equipment deployed at the field location, rather than in situ sensing that directly probes samples within their native environment without collection. The method utilizes the smartphone's color recognition feature and an adaptive deconvolution algorithm that allows for the simultaneous detection of these pollutants using a six-channel device under optimal conditions. The detection limits for nitrite, ammonia nitrogen and total phosphorus were 0.013, 0.14 and 0.034 mg L-1, respectively. Furthermore, the linear ranges for nitrite, ammonia nitrogen and total phosphorus were 0.02-0.86, 0.18-2.25 and 0.04-1.65 mg L-1, respectively, and their recoveries were in ranges of 90.2 ± 1.8-108.4 ± 6.8%, 84.0 ± 7.4-107.3 ± 5.5%, and 93.8 ± 7.5-107.6 ± 2.7%, respectively. This method offers a quick, precise, and sensitive alternative to traditional analysis, reducing analysis time, minimizing sample contamination and errors, and thus providing a convenient and efficient solution for the on-site environmental monitoring of ammonia nitrogen, nitrite, and total phosphorus, suitable for rapid water quality detection.

基于智能手机的水中亚硝酸盐、氨氮、总磷的实时多参数检测
氨氮和磷水平的升高引发富营养化,刺激藻类繁殖,耗尽氧气,从而降低水质并杀死鱼类。亚硝酸盐对人类和动物有毒,过量存在时会污染水源,使水不适合饮用,并使通过标准处理去除它们变得困难。这些因素共同严重危害水生生物、人类健康和水安全。因此,开发环境水体中亚硝酸盐、氨氮和总磷的现场定量测定方法对环境监测机构具有重要意义。本研究介绍了一种快速、经济、灵活的现场检测方法,利用智能手机和自行设计的3d打印便携式设备来检测环境水中的亚硝酸盐、氨氮和总磷。这是一种现场分析方法,因为它涉及部署在现场位置的便携式设备,而不是直接在其原生环境中探测样品而不收集的现场传感。该方法利用智能手机的颜色识别功能和自适应反卷积算法,允许在最佳条件下使用六通道设备同时检测这些污染物。亚硝酸盐、氨氮和总磷的检出限分别为0.013、0.14和0.034 mg L-1。亚硝酸盐、氨氮和总磷的线性范围分别为0.02 ~ 0.86、0.18 ~ 2.25和0.04 ~ 1.65 mg L-1,加样回收率分别为90.2±1.8 ~ 108.4±6.8%、84.0±7.4 ~ 107.3±5.5%和93.8±7.5 ~ 107.6±2.7%。该方法替代传统分析方法,快速、准确、灵敏,减少了分析时间,最大限度地减少了样品污染和误差,为氨氮、亚硝酸盐、总磷的现场环境监测提供了方便、高效的解决方案,适用于水质快速检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Analytical Methods
Analytical Methods CHEMISTRY, ANALYTICAL-FOOD SCIENCE & TECHNOLOGY
CiteScore
5.10
自引率
3.20%
发文量
569
审稿时长
1.8 months
期刊介绍: Early applied demonstrations of new analytical methods with clear societal impact
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