TY - JOUR
T1 - The electrocatalytic hydrogen evolution reaction using a heteroatom-doped hollow onion-like fullerene across a wide pH range
AU - Mehta, Isha
AU - Rajput, Anubha
AU - Yewale, Purva
AU - Chakraborty, Biswarup
AU - Bhattacharya, Sagarika
N1 - Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2025
PY - 2025/12/28
Y1 - 2025/12/28
N2 - Electrocatalytic hydrogen production from the water splitting reaction can satiate the global future energy demand. Low-dimensional carbon nanomaterials have attracted the attention of researchers due to their low cost, easy synthetic techniques, high mechanical/chemical stability, remarkable electrical conductivity, large specific surface area, and environmentally benign nature. Specifically, hollow Onion-Like Fullerenes (h-OLFs) with high porosity can be promising metal-free electrocatalysts for the production of green hydrogen. In this work, we report the hydrothermal synthesis of h-OLF in a specific bottom-up method from glucose and sulphanilamide as organic precursors and its subsequent characterization. Upon introducing the h-OLF as a carbon-based cathodic material on the 1 cm2surface of nickel foam, reasonable hydrogen evolution reaction (HER) activity was observed in non-aqueous media containing different amounts of p-toluene sulphonic acid (PTSA), acetic acid (AcOH), sulphate buffer, and dilute HCl as the proton source, giving rise to a very low overpotential (η) of 133 mV to achieve a cathodic current of 10 mA cm−2and long-term HER performance, e.g., 30 000 s, while maintaining jHER> 15 mA cm−2under chronoamperometric conditions. The lowest Tafel slope value and low charge transfer resistance (Rct) indicate the favourable HER electrokinetics of the h-OLF. The highest double-layer capacitance (Cdl) in the dilute HCl-containing non-aqueous electrolyte further implies maximum exposure of the electrochemically active sites, facilitating proton adsorption ont the surface of the h-OLF, showcasing the remarkable HER activity of this unique carbon-based nanomaterial.
AB - Electrocatalytic hydrogen production from the water splitting reaction can satiate the global future energy demand. Low-dimensional carbon nanomaterials have attracted the attention of researchers due to their low cost, easy synthetic techniques, high mechanical/chemical stability, remarkable electrical conductivity, large specific surface area, and environmentally benign nature. Specifically, hollow Onion-Like Fullerenes (h-OLFs) with high porosity can be promising metal-free electrocatalysts for the production of green hydrogen. In this work, we report the hydrothermal synthesis of h-OLF in a specific bottom-up method from glucose and sulphanilamide as organic precursors and its subsequent characterization. Upon introducing the h-OLF as a carbon-based cathodic material on the 1 cm2surface of nickel foam, reasonable hydrogen evolution reaction (HER) activity was observed in non-aqueous media containing different amounts of p-toluene sulphonic acid (PTSA), acetic acid (AcOH), sulphate buffer, and dilute HCl as the proton source, giving rise to a very low overpotential (η) of 133 mV to achieve a cathodic current of 10 mA cm−2and long-term HER performance, e.g., 30 000 s, while maintaining jHER> 15 mA cm−2under chronoamperometric conditions. The lowest Tafel slope value and low charge transfer resistance (Rct) indicate the favourable HER electrokinetics of the h-OLF. The highest double-layer capacitance (Cdl) in the dilute HCl-containing non-aqueous electrolyte further implies maximum exposure of the electrochemically active sites, facilitating proton adsorption ont the surface of the h-OLF, showcasing the remarkable HER activity of this unique carbon-based nanomaterial.
UR - https://www.scopus.com/pages/publications/105023195349
U2 - 10.1039/d5nr03492b
DO - 10.1039/d5nr03492b
M3 - Article
C2 - 41307537
AN - SCOPUS:105023195349
SN - 2040-3364
VL - 17
SP - 27947
EP - 27958
JO - Nanoscale
JF - Nanoscale
IS - 48
ER -