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A-Site Doped Aurivillius Layered Perovskite Thin Film (Bi4-xDyxTi3O12) Electrode for Mercury Ions Sensor

机译:A位掺杂的Aurivillius分层钙钛矿薄膜(BI4-XDYXTI3O12)用于汞离子传感器

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摘要

Heavy metals are highly polluting the environment and are considered a serious concern. As a result, early detection of these heavy metals is critical. In this research work, we focus on a new electrochemical sensor based on rare earth element (Dysprosium, Dy) modified with Aruvillius layered Perovskite (Bismuth titanate, Bi4Ti3O12, BTO) thin film electrodes with different concentrations of (0, 2%, 4%, 6%) Dysprosium (Dy)was prepared using the sol-gel spin coating method for mercury (Hg2+) ions detection.The X-ray diffraction analysis reveals the prepared sample exhibits a polycrystalline ortho- rhombic structure. The highest emission peak at 575 nm is discerned in the more visible region corresponding to the transition of 4F9/2!6H3/2. In the X-ray photoelectron spectro- scopy analysis, the existence of Bi, Ti, O, and Dy is demonstrat- ing the successful formation of prepared material. In the electrochemical section, various parameters such as pH, scan rate, and different concentrations of (Hg2+) ions were inves- tigated. From the Cyclic Voltammetry and Electrochemical Impedance analysis, 4% Dy doped BTO has been identified as an active electrochemical participant and has low charge transfer resistance. The stability analysis result shows the better stability of the electrode during the cycling for sensing application with a lower detection limit of 1.27 μM. It indicated that the modified 4% Dy doped BTO thin film electrode can be explored for real-time analysis.
机译:重金属高度污染环境,被认为是一个严重的关注。结果,对这些重金属的早期检测至关重要。在这项研究工作中,我们专注于一种新的电化学传感器,该传感器基于稀土元素(dysprosium,dy),用阿维利乌斯分层的钙钛矿(BiSmuth Titanate,bi4ti3o12,bto)薄膜电极(0,2%,4%,4%,4%,4%,4%,4%,4%)使用汞(HG2+)离子检测的Sol-Gel自旋涂层方法制备了6%)肾上腺素(DY)。X射线衍射分析揭示了制备的样品表现出多晶的正骨结构。在575 nm处的最高发射峰在对应于4f9/2!6H3/2过渡的更明显区域中。在X射线光电子光谱分析中,BI,Ti,O和dy的存在证明了制备材料的成功形成。在电化学部分中,对各种参数(例如pH,扫描速率和不同浓度的(Hg2+)离子进行了研究。从循环伏安法和电化学阻抗分析中,已将4%的掺杂BTO鉴定为活性电化学参与者,并且具有低电荷转移耐药性。稳定性分析结果表明,在循环过程中,电极的稳定性更好,以进行感测,较低的检测极限为1.27μm。它表明可以探索经过修改的4%掺杂BTO薄膜电极以进行实时分析。

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