Premium
Boosting Alkaline Hydrogen Evolution Activity with Ni‐Doped MoS 2 /Reduced Graphene Oxide Hybrid Aerogel
Author(s) -
Lin Chong,
Gao Zhengfei,
Jin Jian
Publication year - 2019
Publication title -
chemsuschem
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.412
H-Index - 157
eISSN - 1864-564X
pISSN - 1864-5631
DOI - 10.1002/cssc.201802488
Subject(s) - aerogel , overpotential , graphene , oxide , materials science , chemical engineering , catalysis , adsorption , inorganic chemistry , nanotechnology , chemistry , electrochemistry , organic chemistry , metallurgy , electrode , engineering
Highly active, durable, and cost‐effective non‐precious‐metal‐based electrocatalysts are urgently needed to improve the sluggish hydrogen evolution reaction (HER) in an alkaline environment. Herein, a lyophilization/thermolysis method is successfully applied to prepare Ni‐doped MoS 2 (Ni‐MoS 2 )/reduced graphene oxide (RGO) hybrid aerogels. The MoS 2 aerogel possesses a higher density of exposed active sites than its corresponding bulk material. Inheriting from GO its abundant functional groups during pyrolysis, the RGO aerogel can uniformly disperse MoS 2 and simultaneously maintain excellent conductivity. The incorporation of Ni atoms can accelerate the cleavage of the HO−H bond and enhance the adsorption and desorption of intermediate OH − . Owing to the synergistic effect of the compositional and structural advantages of aerogels, the Ni‐MoS 2 /RGO hybrid aerogel delivers highly promoted HER kinetics in alkaline media. As a result, an optimal η 10 (overpotential at 10 mA cm −2 ) of 168 mV in 1 m KOH is obtained, which is superior to the non‐doped MoS 2 /RGO hybrid aerogel (225 mV) and MoS 2 aerogel (263 mV), letting alone bulk MoS 2 (448 mV). Moreover, the η 60 (overpotential at 60 mA cm −2 ) is maintained at 262 mV after chronopotentiometry tests at a constant current density of 10 mA cm −2 for 24 h, indicating an exceptionally stability of the HER catalyst.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom