Leniart Andrzej, Burnat Barbara, Brycht Mariola, Dzemidovich Maryia-Mazhena, Skrzypek Sławomira
University of Lodz, Faculty of Chemistry, Department of Inorganic and Analytical Chemistry, Tamka 12, 91-403 Lodz, Poland.
University of Lodz, Doctoral School of Exact and Natural Sciences, Matejki 21/23, 90-231 Lodz, Poland.
Materials (Basel). 2024 Feb 9;17(4):841. doi: 10.3390/ma17040841.
This study outlines the fabrication process of an electrochemical platform utilizing glassy carbon electrode (GCE) modified with multi-walled carbon nanotubes (MWCNTs) and palladium nanoparticles (PdNPs). The MWCNTs were applied on the GCE surface using the drop-casting method and PdNPs were produced electrochemically by a potentiostatic method employing various programmed charges from an ammonium tetrachloropalladate(II) solution. The resulting GCEs modified with MWCNTs and PdNPs underwent comprehensive characterization for topographical and morphological attributes, utilizing atomic force microscopy and scanning electron microscopy along with energy-dispersive X-ray spectrometry. Electrochemical assessment of the GCE/MWCNTs/PdNPs involved cyclic voltammetry (CV) and electrochemical impedance spectroscopy conducted in perchloric acid solution. The findings revealed even dispersion of PdNPs, and depending on the electrodeposition parameters, PdNPs were produced within four size ranges, i.e., 10-30 nm, 20-40 nm, 50-60 nm, and 70-90 nm. Additionally, the electrocatalytic activity toward formaldehyde oxidation was assessed through CV. It was observed that an increase in the size of the PdNPs corresponded to enhanced catalytic activity in the formaldehyde oxidation reaction on the GCE/MWCNTs/PdNPs. Furthermore, satisfactory long-term stability over a period of 42 days was noticed for the GCE/MWCNTs/PDNPs(100) material which demonstrated the best electrocatalytic properties in the electrooxidation reaction of formaldehyde.
本研究概述了一种电化学平台的制备过程,该平台利用修饰有多壁碳纳米管(MWCNTs)和钯纳米颗粒(PdNPs)的玻碳电极(GCE)。采用滴铸法将MWCNTs应用于GCE表面,并通过恒电位法从四氯钯酸铵(II)溶液中采用各种编程电荷电化学制备PdNPs。所得的用MWCNTs和PdNPs修饰的GCE利用原子力显微镜、扫描电子显微镜以及能量色散X射线光谱对其形貌和形态属性进行了全面表征。GCE/MWCNTs/PdNPs的电化学评估包括在高氯酸溶液中进行的循环伏安法(CV)和电化学阻抗谱。研究结果表明PdNPs分散均匀,并且根据电沉积参数,PdNPs在四个尺寸范围内生成,即10 - 30 nm、20 - 40 nm、50 - 60 nm和70 - 90 nm。此外,通过CV评估了对甲醛氧化的电催化活性。观察到在GCE/MWCNTs/PdNPs上,PdNPs尺寸的增加对应于甲醛氧化反应中催化活性的增强。此外,对于在甲醛电氧化反应中表现出最佳电催化性能的GCE/MWCNTs/PDNPs(100)材料,在42天的时间内观察到了令人满意的长期稳定性。