TY - JOUR
T1 - Laser-assisted one-step fabrication of interlayer-spacing-regulated three-dimensional MXene-based micro-supercapacitors
AU - Zhu, Xiao Dong
AU - Ren, Cai Yun
AU - Liang, Yue
AU - Liang, Xue
AU - Lu, Nan
AU - Zhang, Yong Chao
AU - Zhao, Yang
AU - Gao, Jian
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/3/1
Y1 - 2024/3/1
N2 - Three-dimensional micro-supercapacitors (3D MSCs) as microenergy-storage modules in miniaturized electronics exist complex construction strategies and limited assembly accuracy. Herein, we propose a one-step construction strategy of 3D MSCs with customizable layer spacing using two-dimensional (2D) film through laser direct writing technology. Laser shaping process induces a substantial enthalpy change, initiating a multi-step reaction that results in the reduction of graphene oxide while facilitating the rapid release of abundant gas generated by its functional groups. This results in an “explosion” of the MXene-graphene oxide (MXene-GO) film, thereby causing its transition from a 2D stacked structure to a 3D skeletal framework. The coexistence of MXene and reduced graphene oxide (rGO) sheets induces a heterogeneous film bonding effect, consolidating the loose and disordered MXene-rGO during the reduction process. When the current density is 0.9 mA cm−2, the area capacitance of 3D MXene-rGO MSCs reaches 66.69 mF cm−2, and its area energy density soars to an impressive 83.4 μW h cm−2, surpassing most of the reported 3D MSCs. Upon increasing the current density from 0.9 mA cm−2 to 1.7 mA cm−2, a remarkable capacitance retention rate of 74 % is achieved. This fabrication strategy promotes the development of next-generation 3D MSC with high performance.
AB - Three-dimensional micro-supercapacitors (3D MSCs) as microenergy-storage modules in miniaturized electronics exist complex construction strategies and limited assembly accuracy. Herein, we propose a one-step construction strategy of 3D MSCs with customizable layer spacing using two-dimensional (2D) film through laser direct writing technology. Laser shaping process induces a substantial enthalpy change, initiating a multi-step reaction that results in the reduction of graphene oxide while facilitating the rapid release of abundant gas generated by its functional groups. This results in an “explosion” of the MXene-graphene oxide (MXene-GO) film, thereby causing its transition from a 2D stacked structure to a 3D skeletal framework. The coexistence of MXene and reduced graphene oxide (rGO) sheets induces a heterogeneous film bonding effect, consolidating the loose and disordered MXene-rGO during the reduction process. When the current density is 0.9 mA cm−2, the area capacitance of 3D MXene-rGO MSCs reaches 66.69 mF cm−2, and its area energy density soars to an impressive 83.4 μW h cm−2, surpassing most of the reported 3D MSCs. Upon increasing the current density from 0.9 mA cm−2 to 1.7 mA cm−2, a remarkable capacitance retention rate of 74 % is achieved. This fabrication strategy promotes the development of next-generation 3D MSC with high performance.
KW - 3D micro-supercapacitor
KW - Dimensional transformation
KW - High energy density
KW - Interlayer-spacing-regulated microelectrode
KW - Laser thermal effect
UR - http://www.scopus.com/inward/record.url?scp=85184011736&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2024.149253
DO - 10.1016/j.cej.2024.149253
M3 - Article
AN - SCOPUS:85184011736
SN - 1385-8947
VL - 483
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 149253
ER -