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Electrochemically modified boron-doped diamond electrode with Pd and Pd-Sn nanoparticles for ethanol electrooxidation

机译:用Pd和Pd-Sn纳米粒子的电化学改性的硼掺杂金刚石电极用于乙醇电氧化

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摘要

The modification of hydrogen terminated boron-doped diamond (HBDD) electrode with pure palladium (Pd) and Pd-Sn (tin) nanoparticles is described in this study. For synthesis of Sn/HBDD and Pd-Sn/HBDD electrode, a potentiostatic two-step electrochemical method involving the electrodeposition of Sn followed by Pd was used, respectively. The modification of the HBDD electrode with Sn and noble metal Pd by forming bimetallic Pd-Sn nanoparticle leads to a higher electrocatalytic activity. The electrocatalytic activity of the bimetallic Pd-Sn nanoparticles was evaluated towards the electrooxidation of ethanol in alkaline media and compared with that of the Pd nanoparticles alone. The bimetallic Pd-Sn nanoparticles modified HBDD electrode exhibits higher current densities and less poisoning effects during ethanol electrooxidation compared to Pd/HBDD. The proper tuning of the Pd loading on a foreign metal along with the surface termination effects of the BDD electrode plays a crucial role in achieving a high mass (4.26 × 106 mA/g) and specific (12.37 mA/cm2) electrocatalytic activity of Pd towards ethanol electrooxidation. The aforementioned catalysts of this research possess a high poisoning resistance (If/Ib = 1.63) and stability towards ethanol electrooxidation in alkaline media.
机译:本研究描述了用纯钯(Pd)和Pd-Sn(锡)纳米粒子的氢封端的硼掺杂金刚石(HBDD)电极的改性。对于Sn / HBDD和PD-Sn / HBDD电极的合成,使用涉及Sn的电沉积的电位的两步电化学方法,然后用Pd使用。通过形成双金属PD-Sn纳米粒子通过形成Bimetallic PD-Sn纳米粒子而导致更高的电催化活性HBDD电极的改性。双金属Pd-Sn纳米颗粒的电催化活性朝向碱介质中的乙醇的电氧化,并单独与Pd纳米颗粒的电氧化。与Pd / hBdd相比,改性HBDD电极改性HBDD电极的改性HBDD电极在乙醇电氧化期间表现出更高的电流密度和更小的中毒作用。在外来金属上的PD负载以及BDD电极的表面终端效果的适当调谐在实现高质量(4.26×106mA / g)和PD的特异性(12.37mA / cm2)电催化活性方面起着至关重要的作用朝向乙醇电氧化。本研究的上述催化剂具有高中的中毒抗性(IF / IB = 1.63),呈碱性介质中的乙醇电氧化稳定性。

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