电沉积CoNi双金属催化剂在乙醇电氧化中的应用

Abdul Asywalul Fazri, None Alvida Nor Puspita, None Selvia Ningsih, None Annisa Auliya
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摘要

铂有可能被用作直接乙醇燃料电池(defc)的催化剂。然而,它的稀缺性和对一氧化碳中毒的易感性带来了新的挑战,需要解决。镍和钴等过渡金属被认为是defc的极好催化剂,因为它们被认为有可能减少与合成过程相关的支出。在本研究中,利用刺激器模式,通过电沉积技术有效地合成了具有双金属性质的钴镍(CoNi)催化剂。随后,进行了评估,以评估催化剂在乙醇电氧化中的熟练程度。利用x射线衍射(XRD)、扫描电子显微镜(SEM)、元素色散x射线分析和电化学阻抗谱(EIS)等多种分析技术对CoNi样品进行了全面表征。XRD分析证实了CoNi的形成,SEM表征表明CoNi样品具有均匀的形貌特征。电阻抗法测得的电荷转移电阻值为21.21 kΩ,溶液电阻值为66.67 kΩ。利用循环伏安法对样品在乙醇电氧化过程中的催化效率进行了评价,得到峰值电流密度为3.14 mA/cm2,证明了双金属CoNi作为乙醇电氧化过程的低成本催化剂的潜力。
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Electrodeposition of CoNi Bimetallic Catalyst for Ethanol Electrooxidation Application
Platinum is potentially employed as a catalyst in direct ethanol fuel cells (DEFCs). However, its scarcity and susceptibility to carbon monoxide poisoning give rise to novel challenges necessitating resolution. Transition metals such as nickel and cobalt are regarded as highly auspicious catalysts for DEFCs due to their perceived potential to reduce the expenditure associated with the synthesis procedure. In the present investigation, the synthesis of a cobalt-nickel (CoNi) catalyst with bimetallic properties was effectively accomplished through the electrodeposition technique utilizing the stimulator mode. Subsequently, an evaluation was conducted to assess the catalyst's proficiency in ethanol electrooxidation. The CoNi samples underwent comprehensive characterization through the utilization of various analytical techniques, namely X-ray diffraction (XRD), scanning electron microscopy (SEM), elemental dispersive X-ray analysis, and electrochemical impedance spectroscopy (EIS). The XRD analysis confirmed the formation of CoNi, while the SEM characterization demonstrated that the CoNi samples exhibited a homogeneous morphological feature. The impedance measured by the EIS technique displayed a resistance to charge transfer value of 21.21 kΩ, while the solution resistance value amounted to 66.67 kΩ. The catalytic efficiency of the specimens in ethanol electrooxidation was evaluated using the cyclic voltammetry technique, resulting in a peak current density of 3.14 mA/cm2 proving the potential of bimetallic CoNi to be a low-cost catalyst for ethanol electrooxidation process.
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