A Remarkable Pt Doped CNT Catalyst as a Double Functional Material: Its Application for Hydrogen Production and Supercapacitor

Tulin Avci Hansu
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Abstract

In this study, by producing bifunctional material, hydrolysis, and supercapacitor applications were investigated. The carbon nanotube-supported Pt catalyst was prepared using the sodium borohydride (NaBH4) reduction. Surface characterization of the synthesized Pt/CNT catalyst was performed using scanning electron microscopy-energy dıstrıbutıon X-ray spectrometer (SEM-EDX), X-ray diffraction (XRD), and transmission electron microscopy (TEM). Hydrolysis experiments were performed after deciding on the appropriate atomic ratio from the Pt/CNT catalysts synthesized in different nuclear ratios. The parameters affecting the hydrogen production from NaBH4 were examined. As a result of the kinetic calculations, the initial rates of reaction for 30°C and 60°C were calculated as 21949,69 mlH2gcatmin-1 and 70018,18 mlH2gcatmin-1. Galvastonic charge-discharge (GCD), cyclic voltammetry (CV), and electrochemical impedance spectroscopy (EIS) were used as characterization techniques for the use of Pt/CNT catalysts as electrodes in supercapacitor applications. The specific capacitance value of 7% Pt/CNT catalyst at 1 A/g current density was calculated as 57,78 F/g. Energy and power density were calculated as 8,025 Wh/kg and 963 W/kg, respectively. Therefore, this catalyst is called a “cap-cat” with capacitor properties. The catalyst used in this study is promising for this recently studied topic.
作为双功能材料的掺铂碳纳米管催化剂:其在制氢和超级电容器中的应用
本研究通过制备双功能材料、水解和超级电容器应用进行了研究。采用硼氢化钠(NaBH4)还原法制备了碳纳米管支撑的铂催化剂。使用扫描电子显微镜-能谱 X 射线光谱仪(SEM-EDX)、X 射线衍射(XRD)和透射电子显微镜(TEM)对合成的铂/碳纳米管催化剂进行了表面表征。在确定以不同核比合成的 Pt/CNT 催化剂的适当原子比后,进行了水解实验。研究了影响 NaBH4 产氢的参数。经过动力学计算,30°C 和 60°C 的初始反应速率分别为 21949.69 mlH2gcatmin-1 和 70018.18 mlH2gcatmin-1。伽伐斯特电荷-放电法(GCD)、循环伏安法(CV)和电化学阻抗谱法(EIS)被用作超级电容器应用中铂/碳纳米管催化剂电极的表征技术。计算得出,在 1 A/g 电流密度下,7% Pt/CNT 催化剂的比电容值为 57,78 F/g。计算得出的能量和功率密度分别为 8025 Wh/kg 和 963 W/kg。因此,这种催化剂被称为具有电容器特性的 "电容猫"。本研究中使用的催化剂在这一最新研究课题中大有可为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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