Origin of the synergistic effects of bimetallic nanoparticles coupled with a metal oxide heterostructure for accelerating catalytic performance

SusMat Pub Date : 2024-06-09 DOI:10.1002/sus2.216
Wail Al Zoubi, Abdullah Al Mahmud, Farah Hazmatulhaq, MOHAMMAD R. THALJI, Stefano Leoni, Jee-Hyun Kang, Young Gun Ko
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Abstract

Precisely tuning bicomponent intimacy during reactions by traditional methods remains a formidable challenge in the fabrication of highly active and stable catalysts because of the difficulty in constructing well‐defined catalytic systems and the occurrence of agglomeration during assembly. To overcome these limitations, a PtRuPNiO@TiOx catalyst on a Ti plate was prepared by ultrasound‐assisted low‐voltage plasma electrolysis. This method involves the oxidation of pure Ti metal and co‐reduction of strong metals at 3000°C, followed by sonochemical ultrasonication under ambient conditions in an aqueous solution. The intimacy of the bimetals in PtRuPNiO@TiOx is tuned, and the metal nanoparticles are uniformly distributed on the porous titania coating via strong metal‒support interactions by leveraging the instantaneous high‐energy input from the plasma discharge and ultrasonic irradiation. The intimacy of PtRuPNiO@TiOx increases the electron density on the Pt surface. Consequently, the paired sites exhibit a high hydrogen evolution reaction activity (an overpotential of 220 mV at a current density of 10 mA cm−2 and Tafel slope of 186 mV dec−1), excellent activity in the hydrogenation of 4‐nitrophenol with a robust stability for up to 20 cycles, and the ability to contrast stated catalysts without ultrasonication and plasma electrolysis. This study facilitates industrially important reactions through synergistic chemical interactions.
双金属纳米粒子与金属氧化物异质结构在加速催化性能方面的协同效应的起源
由于难以构建定义明确的催化体系以及在组装过程中会出现团聚现象,因此用传统方法精确调节反应过程中的双组分亲和性仍然是制造高活性和高稳定性催化剂的一项艰巨挑战。为了克服这些限制,我们采用超声辅助低压等离子电解法在钛板上制备了 PtRuPNiO@TiOx 催化剂。这种方法包括在 3000°C 的温度下氧化纯 Ti 金属和共还原强金属,然后在水溶液中的环境条件下进行超声化学超声处理。PtRuPNiO@TiOx 中双金属的亲和性得到了调整,利用等离子体放电和超声波辐照的瞬时高能输入,金属纳米颗粒通过强金属-支撑相互作用均匀地分布在多孔的二氧化钛涂层上。PtRuPNiO@TiOx 的紧密性增加了铂表面的电子密度。因此,配对位点表现出很高的氢进化反应活性(电流密度为 10 mA cm-2 时的过电位为 220 mV,Tafel 斜坡为 186 mV dec-1),在 4-硝基苯酚的氢化反应中表现出卓越的活性,并在长达 20 个循环中保持稳定。这项研究通过协同化学作用促进了重要的工业反应。
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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