TY - JOUR
T1 - Interfacial Engineering of Cobalt Nitrides and Mesoporous Nitrogen-Doped Carbon
T2 - Toward Efficient Overall Water-Splitting Activity with Enhanced Charge-Transfer Efficiency
AU - Yuan, Wenyu
AU - Wang, Shiyao
AU - Ma, Yiyuan
AU - Qiu, Yu
AU - An, Yurong
AU - Cheng, Laifei
N1 - Publisher Copyright:
Copyright © 2020 American Chemical Society.
PY - 2020/3/13
Y1 - 2020/3/13
N2 - Nonoxides have been widely employed as highly efficient catalysts for water splitting. However, these nonoxides suffer from obvious surface transformation and poor structural stability, which must be urgently remedied. Herein, the interfacial engineering of Co4N via mesoporous nitrogen-doped carbon (NC) was first carried out, in which NC can significantly suppress the oxidization of Co4N in alkaline media, ensuring the efficient interfacial charge transport between Co4N and NC. As a result, extremely low overpotentials @10 mA cm-2 of 62 mV (hydrogen evolution reaction, HER) and 257 mV (oxygen evolution reaction, OER) and small Tafel slopes of 37 mV (HER) and 58 mV dec-1 (OER) were achieved in alkaline media. Theoretical calculations suggest that their synergetic coupling effects can significantly facilitate the charge-transfer process and further greatly reduce the energy barrier for water splitting. This work underscores the importance of the surface engineering of nonoxides and efficient approaches for the design of stable catalysts for electrocatalysis.
AB - Nonoxides have been widely employed as highly efficient catalysts for water splitting. However, these nonoxides suffer from obvious surface transformation and poor structural stability, which must be urgently remedied. Herein, the interfacial engineering of Co4N via mesoporous nitrogen-doped carbon (NC) was first carried out, in which NC can significantly suppress the oxidization of Co4N in alkaline media, ensuring the efficient interfacial charge transport between Co4N and NC. As a result, extremely low overpotentials @10 mA cm-2 of 62 mV (hydrogen evolution reaction, HER) and 257 mV (oxygen evolution reaction, OER) and small Tafel slopes of 37 mV (HER) and 58 mV dec-1 (OER) were achieved in alkaline media. Theoretical calculations suggest that their synergetic coupling effects can significantly facilitate the charge-transfer process and further greatly reduce the energy barrier for water splitting. This work underscores the importance of the surface engineering of nonoxides and efficient approaches for the design of stable catalysts for electrocatalysis.
UR - http://www.scopus.com/inward/record.url?scp=85080126323&partnerID=8YFLogxK
U2 - 10.1021/acsenergylett.0c00116
DO - 10.1021/acsenergylett.0c00116
M3 - 文章
AN - SCOPUS:85080126323
SN - 2380-8195
VL - 5
SP - 692
EP - 700
JO - ACS Energy Letters
JF - ACS Energy Letters
IS - 3
ER -