TY - JOUR
T1 - Reaction environment self-modification on low-coordination Ni2+ octahedra atomic interface for superior electrocatalytic overall water splitting
AU - Sun, Kaian
AU - Zhao, Lei
AU - Zeng, Lingyou
AU - Liu, Shoujie
AU - Zhu, Houyu
AU - Li, Yanpeng
AU - Chen, Zheng
AU - Zhuang, Zewen
AU - Li, Zhaoling
AU - Liu, Zhi
AU - Cao, Dongwei
AU - Zhao, Jinchong
AU - Liu, Yunqi
AU - Pan, Yuan
AU - Chen, Chen
N1 - Publisher Copyright:
© 2020, Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature.
PY - 2020/11/1
Y1 - 2020/11/1
N2 - Large scale synthesis of high-efficiency bifunctional electrocatalyst based on cost-effective and earth-abundant transition metal for overall water splitting in the alkaline environment is indispensable for renewable energy conversion. In this regard, meticulous design of active sites and probing their catalytic mechanism on both cathode and anode with different reaction environment at molecular-scale are vitally necessary. Herein, a coordination environment inheriting strategy is presented for designing low-coordination Ni2+ octahedra (L-Ni-8) atomic interface at a high concentration (4.6 at.%). Advanced spectroscopic techniques and theoretical calculations reveal that the self-matching electron delocalization and localization state at L-Ni-8 atomic interface enable an ideal reaction environment at both cathode and anode. To improve the efficiency of using the self-modification reaction environment at L-Ni-8, all of the structural features, including high atom economy, mass transfer, and electron transfer, are integrated together from atomic-scale to macro-scale. At high current density of 500 mA/cm2, the samples synthesized at gram-scale can deliver low hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) overpotentials of 262 and 348 mV, respectively. [Figure not available: see fulltext.]
AB - Large scale synthesis of high-efficiency bifunctional electrocatalyst based on cost-effective and earth-abundant transition metal for overall water splitting in the alkaline environment is indispensable for renewable energy conversion. In this regard, meticulous design of active sites and probing their catalytic mechanism on both cathode and anode with different reaction environment at molecular-scale are vitally necessary. Herein, a coordination environment inheriting strategy is presented for designing low-coordination Ni2+ octahedra (L-Ni-8) atomic interface at a high concentration (4.6 at.%). Advanced spectroscopic techniques and theoretical calculations reveal that the self-matching electron delocalization and localization state at L-Ni-8 atomic interface enable an ideal reaction environment at both cathode and anode. To improve the efficiency of using the self-modification reaction environment at L-Ni-8, all of the structural features, including high atom economy, mass transfer, and electron transfer, are integrated together from atomic-scale to macro-scale. At high current density of 500 mA/cm2, the samples synthesized at gram-scale can deliver low hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) overpotentials of 262 and 348 mV, respectively. [Figure not available: see fulltext.]
KW - atomic interface effect
KW - density functional theory
KW - high current density
KW - overall water splitting
KW - reaction environment self-modification
UR - https://www.scopus.com/pages/publications/85089014831
U2 - 10.1007/s12274-020-2974-7
DO - 10.1007/s12274-020-2974-7
M3 - 文章
AN - SCOPUS:85089014831
SN - 1998-0124
VL - 13
SP - 3068
EP - 3074
JO - Nano Research
JF - Nano Research
IS - 11
ER -