A. G. Cahyanegoro, S. Sudibyo, M. Badaruddin, Sugiyanto, F. Nurjaman, Y. Supriyatna, E. Prasetyo
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引用次数: 0
摘要
镧是一种稀土族,在各种应用中越来越需要它。在本研究中,我们分析了磁场对镧电沉积的影响。使用的电化学分析技术有线性扫描伏安法(LSV)和计时安培法(CA)。LSV用于测量最大电流(限制电流)。为了确定最大电流,必须在塔菲尔图中绘制LSV的结果。由LSV产生的Tafel是电极电位(mV)与电流密度的对数(Log iL (A·cm-2))。采用时间电流法测定了电活性物质的扩散系数。结果表明,增加工作电极面积(A)、磁场强度(B)和电活性浓度(C)的作用对极限电流有一定的提高。同时,溶液粘度(v)和扩散系数(D)的增加会降低镧电沉积的极限电流值。本研究还进行了之前研究过的添加镧的镀铬工艺,发现利用镀铬工艺产生的磁场更加均匀;厚的;更致密,块状沉积物更多。
Electrochemical analysis study of rare earth element: Lanthanum under the effect of magnetic field and its application as an additive for chrome magneto electrodeposition
Lanthanum is a rare earth group that is increasingly needed for a variety of applications. In this study, we analyze the effect of magnetic fields on lanthanum electrodeposition. Electrochemical analysis techniques used are linear sweep voltammetry (LSV) and Chronoamperometry (CA). LSV is used to measure the maximum current (limiting current). To determine the maximum current, the result of the LSV must be plotted in a Tafel plot. Tafel generated from LSV is the electrode potential (mV) with the logarithm of the current density (Log iL (A·cm–2)). The diffusion coefficient of the electroactive species was determined using chronoamperometry (CA). The results showed that the effect of increasing the working electrode area (A), magnetic field strength (B), and electroactive concentration (C) gave a certain increase in limiting current. Meanwhile, the addition of solution viscosity (v) and diffusion coefficient (D) will reduce the limiting current value for lanthanum electrodeposition. This study also carried out a chrome-plating process with the addition of lanthanum which was studied previously, it was found that the plating process using magnetic field produced a more uniform; thicker; more compact, and more mass deposit.