Jiali Zhai , Yixin Hu , Mingkang Li , Hongwei Liu , Xin Liang , Jie Rong , Guangtao Zhao
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引用次数: 0
Abstract
The chronopotentiometric measurements based on ion-selective microelectrode (ISμE) could be a promising tool for the detection of free copper ion in seawater at the sediment-water interface with high sensitivity. In this work, an all-solid-contact copper ion-selective microelectrode (Cu2+-ISμE) based on platinum wire was designed for chronopotentiometric determination of copper in seawater at the sediment-water interface. The lipophilic salt ETH 500 was added into the Cu2+-selective membrane instead of traditional ion-exchanger, and the extraction of copper could be galvanostatically controlled. The present chronopotentiometric method shows a linear activity range of 2.5 × 10−4 - 2.5 × 10−8 M with a slope of 34.75 ± 0.5 mV/decade under the optimized conditions, and the detection limit is 5.8 × 10−9 M. Moreover, the chronopotentiometric method has a good selectivity and reproductivity. Additionally, the feasibility of the Cu2+-ISμE has been investigated for the measurement of the content of Cu2+ in the seawater samples at the sediment-water interface with a small volume (e.g., 1 mL) without any pretreatment, and the spike recovery for this method is from 92.24 % to 106.51 %. Herein, the detection of copper through the pulse current based Cu2+-ISμE has satisfactory results. The galvanostatic controlled technique based on ISμE has potential application in the in-situ determination of trace heavy metals in seawater.
期刊介绍:
Sensing and Bio-Sensing Research is an open access journal dedicated to the research, design, development, and application of bio-sensing and sensing technologies. The editors will accept research papers, reviews, field trials, and validation studies that are of significant relevance. These submissions should describe new concepts, enhance understanding of the field, or offer insights into the practical application, manufacturing, and commercialization of bio-sensing and sensing technologies.
The journal covers a wide range of topics, including sensing principles and mechanisms, new materials development for transducers and recognition components, fabrication technology, and various types of sensors such as optical, electrochemical, mass-sensitive, gas, biosensors, and more. It also includes environmental, process control, and biomedical applications, signal processing, chemometrics, optoelectronic, mechanical, thermal, and magnetic sensors, as well as interface electronics. Additionally, it covers sensor systems and applications, µTAS (Micro Total Analysis Systems), development of solid-state devices for transducing physical signals, and analytical devices incorporating biological materials.