TY - JOUR
T1 - Interfacial engineering of transition-metal sulfides heterostructures with built-in electric-field effects for enhanced oxygen evolution reaction
AU - Ni, Shan
AU - Qu, Hongnan
AU - Xing, Huifang
AU - Xu, Zihao
AU - Zhu, Xiangyang
AU - Yuan, Menglei
AU - Rong, Meng
AU - Wang, Li
AU - Yu, Jiemiao
AU - Li, Yanqing
AU - Yang, Liangrong
AU - Liu, Huizhou
N1 - Publisher Copyright:
© 2021 The Chemical Industry and Engineering Society of China, and Chemical Industry Press Co., Ltd.
PY - 2022/1
Y1 - 2022/1
N2 - Developing highly efficient, durable, and non-noble electrocatalysts for the sluggish anodic oxygen evolution reaction (OER) is the pivotal for meeting the practical demand in water splitting. However, the current transition-metal electrocatalysts still suffer from low activity and durability on account of poor interfacial reaction kinetics. In this work, a facile solid-state synthesis strategy is developed to construct transition-metal sulfides heterostructures (denoted as MS2/NiS2, M = Mo or W) for boosting OER electrocatalysis. As a result, MoS2/NiS2 and WS2/NiS2 show lower overpotentials of 300 mV and 320 mV to achieve the current density of 10 mA·cm−2, and smaller Tafel slopes of 60 mV·dec−1 and 83 mV·dec−1 in 1 mol·L−1 KOH, respectively, in comparison with the single MoS2, WS2, NiS2, as well as even the benchmark RuO2. The experiments reveal that the designed heterostructures have strong electronic interactions and spontaneously develop a built-in electric field at the heterointerface with uneven charge distribution based on the difference of band structures, which promote interfacial charge transfer, improve absorptivity of OH−, and modulate the energy level more comparable to the OER. Thus, the designed transition-metal sulfides heterostructures exhibit a remarkably high electrocatalytic activity for OER. This study provides a simple strategy to manipulate the heterostructure interface via an energy level engineering method for OER and can be extended to fabricate other heterostructures for various energy-related applications.
AB - Developing highly efficient, durable, and non-noble electrocatalysts for the sluggish anodic oxygen evolution reaction (OER) is the pivotal for meeting the practical demand in water splitting. However, the current transition-metal electrocatalysts still suffer from low activity and durability on account of poor interfacial reaction kinetics. In this work, a facile solid-state synthesis strategy is developed to construct transition-metal sulfides heterostructures (denoted as MS2/NiS2, M = Mo or W) for boosting OER electrocatalysis. As a result, MoS2/NiS2 and WS2/NiS2 show lower overpotentials of 300 mV and 320 mV to achieve the current density of 10 mA·cm−2, and smaller Tafel slopes of 60 mV·dec−1 and 83 mV·dec−1 in 1 mol·L−1 KOH, respectively, in comparison with the single MoS2, WS2, NiS2, as well as even the benchmark RuO2. The experiments reveal that the designed heterostructures have strong electronic interactions and spontaneously develop a built-in electric field at the heterointerface with uneven charge distribution based on the difference of band structures, which promote interfacial charge transfer, improve absorptivity of OH−, and modulate the energy level more comparable to the OER. Thus, the designed transition-metal sulfides heterostructures exhibit a remarkably high electrocatalytic activity for OER. This study provides a simple strategy to manipulate the heterostructure interface via an energy level engineering method for OER and can be extended to fabricate other heterostructures for various energy-related applications.
KW - Built-in electric field
KW - Heterointerface
KW - Oxygen evolution reaction
KW - Transition-metal sulfides heterostructures
UR - http://www.scopus.com/inward/record.url?scp=85122628199&partnerID=8YFLogxK
U2 - 10.1016/j.cjche.2021.09.026
DO - 10.1016/j.cjche.2021.09.026
M3 - 文章
AN - SCOPUS:85122628199
SN - 1004-9541
VL - 41
SP - 320
EP - 328
JO - Chinese Journal of Chemical Engineering
JF - Chinese Journal of Chemical Engineering
ER -