TY - JOUR
T1 - Revealing the effect of interfacial electron transfer in heterostructured Co9S8@NiFe LDH for enhanced electrocatalytic oxygen evolution
AU - Feng, Xueting
AU - Jiao, Qingze
AU - Dai, Zheng
AU - Dang, Yanliu
AU - Suib, Steven L.
AU - Zhang, Jiatao
AU - Zhao, Yun
AU - Li, Hansheng
AU - Feng, Caihong
AU - Li, Anran
N1 - Publisher Copyright:
© 2021 The Royal Society of Chemistry.
PY - 2021/5/28
Y1 - 2021/5/28
N2 - Heterointerface engineering is a desirable way to rationally design efficient and low-cost electrocatalysts for the oxygen evolution reaction (OER). Herein, urchin-like Co9S8@NiFe layered double hydroxide (Co9S8@NiFe LDH) heterostructured hollow spheres are assembled from Co9S8 hollow spheres as the core and porous NiFe LDH nanowires as the shell. The heterostructured hollow spheres show a small overpotential of 220 mV at a current density of 10 mA cm-2, a low Tafel slope of 52.0 mV dec-1, and robust stability, which is better than that of commercial IrO2 and most reported non-precious electrocatalysts. Density functional theory (DFT) calculations show that the synergetic effect at the interface could improve the electrical conductivity of Co9S8@NiFe LDH, induce electron transfer from NiFe LDH to Co9S8, and lower the energy barriers of intermediates for the OER, leading to enhanced electrocatalytic activity. Meanwhile, the urchin-like hollow structure with nanopores and super-hydrophilicity can provide desired structural stability, facilitate ion penetration and release bubbles, improving the accessibility of active sites and thereby boosting OER catalytic performance. This work provides a viable route to develop high performance electrocatalysts for the OER.
AB - Heterointerface engineering is a desirable way to rationally design efficient and low-cost electrocatalysts for the oxygen evolution reaction (OER). Herein, urchin-like Co9S8@NiFe layered double hydroxide (Co9S8@NiFe LDH) heterostructured hollow spheres are assembled from Co9S8 hollow spheres as the core and porous NiFe LDH nanowires as the shell. The heterostructured hollow spheres show a small overpotential of 220 mV at a current density of 10 mA cm-2, a low Tafel slope of 52.0 mV dec-1, and robust stability, which is better than that of commercial IrO2 and most reported non-precious electrocatalysts. Density functional theory (DFT) calculations show that the synergetic effect at the interface could improve the electrical conductivity of Co9S8@NiFe LDH, induce electron transfer from NiFe LDH to Co9S8, and lower the energy barriers of intermediates for the OER, leading to enhanced electrocatalytic activity. Meanwhile, the urchin-like hollow structure with nanopores and super-hydrophilicity can provide desired structural stability, facilitate ion penetration and release bubbles, improving the accessibility of active sites and thereby boosting OER catalytic performance. This work provides a viable route to develop high performance electrocatalysts for the OER.
UR - http://www.scopus.com/inward/record.url?scp=85106658681&partnerID=8YFLogxK
U2 - 10.1039/d1ta02318g
DO - 10.1039/d1ta02318g
M3 - Article
AN - SCOPUS:85106658681
SN - 2050-7488
VL - 9
SP - 12244
EP - 12254
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 20
ER -