制备和应用掺铜锑电极以提高海水 pH 值测量性能

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analyst Pub Date : 2024-05-23 DOI:10.1039/D4AN00606B
Zhen Li, Li Zong, Tao Xu, Caiyun Zhang and Chao Liu
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引用次数: 0

摘要

锑基电极由于成本低廉,被广泛应用于各种领域的 pH 值检测。然而,在海水 pH 值测量中观察到的明显电位漂移严重阻碍了它们在海洋环境中的应用。本研究的重点是通过掺杂不同数量的铜来增强纯锑电极的稳定性,同时不影响其 pH 响应。一系列电化学测试表明,制备的合金电极具有优异的 pH 响应特性,包括灵敏度、离子选择性、响应时间、可逆性和温度系数。此外,合金电极比纯锑电极更耐腐蚀,从而保证了其稳定性。值得注意的是,含锑 63% 和 70% 的合金电极表现出更优越的电化学特性。表面分析表明,与纯锑电极相比,合金电极减少了氧化、表面裂纹和锑剥落。此外,制备的合金电极在模拟高盐度海水和真实海水中均表现出优异的 pH 响应和稳定性。上述结果表明,在锑中掺入廉价的铜可以通过增强抗腐蚀性和减缓氧化速率来提高电极的稳定性,从而使电极在相对稳定的状态下可靠地长时间工作。这些发现为开发基于非贵金属的新型 pH 电极提供了实验支持,以便在海水等挑战性环境中使用。
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Preparation and application of a Cu-doped antimony electrode to improve the performance of pH measurement in seawater†

Antimony-based electrodes are widely used in various fields for pH detection due to their low cost. However, their application in the marine environment is significantly hampered by the significant potential drift observed in seawater pH measurements. This study focuses on enhancing the stability of a pure antimony electrode by doping various amounts of copper without compromising its pH response. A series of electrochemical tests demonstrated that the fabricated alloy electrodes exhibited excellent pH response characteristics, including sensitivity, ion selectivity, response time, reversibility, and temperature coefficients. Moreover, the alloy electrodes were more resistant to corrosion than the pure antimony electrode, thereby guaranteeing the stability. Notably, the alloy electrodes containing 63 at% and 70 at% antimony exhibited superior electrochemical characteristics. The surface analysis elucidated that the alloy electrode had reduced oxidation, surface cracks and antimony peeling compared to the pure antimony electrode. Furthermore, the prepared alloy electrodes exhibited excellent pH response and stability in simulated high-salinity seawater and real seawater. The above results highlight that doping cheap copper into antimony can improve the electrode stability by enhancing the corrosion resistance and slowing down the oxidation rate, thus enabling reliable long-time operation in a relatively stable state. These findings provide experimental support for developing novel pH electrodes based on non-noble metals for use in challenging environments such as seawater.

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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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