过渡金属掺杂ZnO涂层对K+离子传感器Al工作电极的影响

Usharani Panda, A. Das, F. Ali, P. Pattanaik, S. Kamilla, D. Mishra
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摘要

Ni掺杂ZnO作为稀释磁性半导体(DMS)已经被广泛研究,但在这项工作中,我们展示了它作为生物传感器的用途。如今,电化学生物传感器通过将生物事件直接转换为电输出,为分析生物样品提供了一种有吸引力且经济实惠的途径。碱金属离子在生物事件中起着至关重要的作用,对其进行研究对于了解人体器官的健康功能是必要的。钾离子(K+)是血液中需要定期监测的碱金属离子之一。这促使我们采用溶胶-凝胶法合成ZnO和Ni掺杂ZnO,并采用本实验室自主开发的化学干湿法(CWD)将合成的材料涂覆在Al衬底上制备工作电极。制备过程中,样品电极在450°C氮气环境下原位退火。通过XRD研究证实了合成材料的结晶性。霍尔效应研究表明,与纯ZnO相比,Ni掺杂ZnO的迁移率和电导率更高。以银为参比电极,分别采用两种电极对不同KOH溶液浓度和PH值的性能和响应进行了实验研究。结果表明,Ni掺杂ZnO包覆Al电极的灵敏度比ZnO包覆Al电极更稳定,且在钾传感方面的持续时间更长。
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Effect of transition metal doped ZnO coated on Al working electrode for K+ ion sensor
Ni doped ZnO has been widely studied as a diluted magnetic semiconductor (DMS), but in this work we have shown its use as a biosensor. Now-a-days, electrochemical biosensors provide an attractive and affordable path to analyze biological samples by converting biological events directly to an electrical output. Alkali metal ions play a vital role in biological events and study of which is necessary to know the healthy functioning of human body organs. Potassium ion (K+) is one of the alkali metal ion in blood which needs regular monitoring. This motivated us to go for synthesis of ZnO and Ni doped ZnO by sol -gel method and later working electrodes were fabricated by coating the synthesized materials on Al substrate by Chemically Wet and Dry (CWD) method indigenously developed in our lab. The fabrication process was followed by insitu annealing of the sample electrodes at 450° C in presence of Nitrogen environment. The crystalline property of the synthesized materials was confirmed by XRD study. The Hall Effect study shows higher mobility and conductivity values for Ni doped ZnO in comparison to pure ZnO. The performance and response to various concentrations of KOH solution and PH level were experimentally studied by both electrodes separately considering Ag as reference electrode.The sensitivity of Ni doped ZnO coated Al electrode was found to be stable and longer sustainable than that of ZnO coated Al electrode in terms of potassium sensing.
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