Kagkoura Antonia, Arenal Raul, Tagmatarchis Nikos
Theoretical and Physical Chemistry Institute, National Hellenic Research Foundation, 48 Vassileos Constantinou Avenue, 11635 Athens, Greece.
Laboratorio de Microscopias Avanzadas (LMA), Universidad de Zaragoza, Mariano Esquillor s/n, 50018 Zaragoza, Spain.
Nanomaterials (Basel). 2020 Dec 3;10(12):2416. doi: 10.3390/nano10122416.
Sulfur-doped carbon nanohorns (S-CNHs) were prepared by an easy one-pot solvothermal process and were employed as efficient electrocatalysts towards water splitting. Initially, oxidation of CNHs followed by thermal treatment with the Lawesson's reagent resulted in the formation of S-CNHs with the sulfur content determined as high as 3%. The S-CNHs were thoroughly characterized by spectroscopic, thermal and electron microscopy imaging means and then electrocatalytically screened. Specifically, S-CNHs showed excellent activity and durability for both O and H evolution reactions, by showing low overpotential at 1.63 and -0.2 V vs. RHE for oxygen and hydrogen evolution reaction, respectively. Additionally, S-CNHs showed significantly lower Tafel slope value and lower current resistance compared to oxidized and pristine CNHs for both electrocatalytic reactions. The outstanding electrocatalytic properties and high conductivity, along with the high S-doping level, render S-CNHs a promising bifunctional electrocatalyst for water splitting.
通过简单的一锅溶剂热法制备了硫掺杂碳纳米角(S-CNHs),并将其用作高效的水分解电催化剂。最初,对碳纳米角进行氧化,然后用劳森试剂进行热处理,得到了硫含量高达3%的S-CNHs。通过光谱、热分析和电子显微镜成像手段对S-CNHs进行了全面表征,然后进行了电催化筛选。具体而言,S-CNHs对析氧反应和析氢反应均表现出优异的活性和耐久性,析氧反应和析氢反应相对于可逆氢电极(RHE)的过电位分别为1.63 V和-0.2 V。此外,在这两种电催化反应中,与氧化后的碳纳米角和原始碳纳米角相比,S-CNHs的塔菲尔斜率值显著更低,电流电阻也更低。出色的电催化性能、高导电性以及高硫掺杂水平,使S-CNHs成为一种有前途的用于水分解的双功能电催化剂。