TY - JOUR
T1 - 3D Self-Supported NiS2/Ti3C2Tx-CC Composite Electrode for High-Performance Flexible Supercapacitors
AU - He, Liping
AU - Wu, Fang
AU - Fang, Liang
AU - Hu, Jia
AU - Luo, Haijun
AU - Zhang, Shufang
AU - Hu, Baoshan
AU - Zhou, Miao
N1 - Publisher Copyright:
© 2022 Taylor & Francis Group, LLC.
PY - 2022
Y1 - 2022
N2 - In this paper, a flexible self-supported electrode based on the porous composite of NiS2 and Ti3C2Tx grown on carbon cloth (NiS2/Ti3C2Tx-CC) was designed and synthesized. Due to the introduction of highly conductive and flexible Ti3C2Tx, the NiS2/Ti3C2Tx-CC electrode achieves a 1.4-fold increase (1214 C g-1 at 2 A g-1) in the specific capacity, a 1.3-fold increase in the rate capability (63% of capacity retention with the current density increases from 2 to 20 A g-1), and a 2.0-fold increase in the cyclic stability (∼83% of capacity retention at the current density of 20 A g-1 after 2000 charge–discharge cycles) compared with the NiS2-CC electrode. Meanwhile, there is no obvious capacity attenuation at the bending angle of 180°, indicating the prominent flexibility of the NiS2/Ti3C2Tx-CC electrode. Accordingly, an all-solid asymmetric supercapacitor (ASC) is fabricated, which exhibits a high energy density of 57.55 Wh kg-1 at the power density of 800 W kg-1. Furthermore, ∼97% of initial capacity is maintained at the current density of 5 A g-1 after 1000 charge–discharge cycles, indicating the good cycling stability. These satisfactory electrochemical behaviors can be also ascribed to the introduction of Ti3C2Tx, which can facilitate the rapid electron transport at the interface of the composite and maintain the outstanding mechanical integrality of the electrode during charge–discharge processes.
AB - In this paper, a flexible self-supported electrode based on the porous composite of NiS2 and Ti3C2Tx grown on carbon cloth (NiS2/Ti3C2Tx-CC) was designed and synthesized. Due to the introduction of highly conductive and flexible Ti3C2Tx, the NiS2/Ti3C2Tx-CC electrode achieves a 1.4-fold increase (1214 C g-1 at 2 A g-1) in the specific capacity, a 1.3-fold increase in the rate capability (63% of capacity retention with the current density increases from 2 to 20 A g-1), and a 2.0-fold increase in the cyclic stability (∼83% of capacity retention at the current density of 20 A g-1 after 2000 charge–discharge cycles) compared with the NiS2-CC electrode. Meanwhile, there is no obvious capacity attenuation at the bending angle of 180°, indicating the prominent flexibility of the NiS2/Ti3C2Tx-CC electrode. Accordingly, an all-solid asymmetric supercapacitor (ASC) is fabricated, which exhibits a high energy density of 57.55 Wh kg-1 at the power density of 800 W kg-1. Furthermore, ∼97% of initial capacity is maintained at the current density of 5 A g-1 after 1000 charge–discharge cycles, indicating the good cycling stability. These satisfactory electrochemical behaviors can be also ascribed to the introduction of Ti3C2Tx, which can facilitate the rapid electron transport at the interface of the composite and maintain the outstanding mechanical integrality of the electrode during charge–discharge processes.
KW - MXene
KW - flexible electrode
KW - self-supported
KW - sulfide
UR - https://www.scopus.com/pages/publications/85131306800
U2 - 10.1080/10584587.2022.2061205
DO - 10.1080/10584587.2022.2061205
M3 - 文章
AN - SCOPUS:85131306800
SN - 1058-4587
VL - 226
SP - 172
EP - 184
JO - Integrated Ferroelectrics
JF - Integrated Ferroelectrics
IS - 1
ER -