TY - JOUR
T1 - Miniaturized high-performance metallic 1T-Phase MoS2 micro-supercapacitors fabricated by temporally shaped femtosecond pulses
AU - Xu, Chenyang
AU - Jiang, Lan
AU - Li, Xin
AU - Li, Chen
AU - Shao, Changxiang
AU - Zuo, Pei
AU - Liang, Misheng
AU - Qu, Liangti
AU - Cui, Tianhong
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2020/1
Y1 - 2020/1
N2 - The recent development of wearable and portable microelectronic devices requires energy storage devices to be miniaturized; micro-supercapacitors (MSCs), as one of the most outstanding candidates, have great potential in future electronic devices. However, in the miniaturization of MSCs, the maintenance of electrochemical performance remains a key challenge. Herein, this study proposes a simple, one-step, mask-free and high-resolution fabrication method for high-performance 1T MoS2 MSCs in atmosphere. The method involves the direct writing of restacked 1T MoS2 films by a temporally shaped femtosecond laser. Specifically, femtosecond laser pulses are temporally shaped to control the transient electron temperature and material absorption for achieving high-resolution fabrication. Excellent electrode material properties and ultrashort ion transfer distance enable the MSCs to exhibit optimal performances with an ultrahigh power density (14 kW cm−3), ultrahigh energy density (15.6 mWh cm−3) and large areal capacitance (36 mF cm−2). Notably, such miniaturized MSCs in a 100 × 100 μm2 area own superior frequency responses (1221 Hz) and time constant (0.82 ms), which are suitable for AC line filters and other high-power demanded electronic devices. This method successfully solves the problem of maintaining performance in the miniaturization of MSCs, allowing next-generation microelectronic devices to be developed.
AB - The recent development of wearable and portable microelectronic devices requires energy storage devices to be miniaturized; micro-supercapacitors (MSCs), as one of the most outstanding candidates, have great potential in future electronic devices. However, in the miniaturization of MSCs, the maintenance of electrochemical performance remains a key challenge. Herein, this study proposes a simple, one-step, mask-free and high-resolution fabrication method for high-performance 1T MoS2 MSCs in atmosphere. The method involves the direct writing of restacked 1T MoS2 films by a temporally shaped femtosecond laser. Specifically, femtosecond laser pulses are temporally shaped to control the transient electron temperature and material absorption for achieving high-resolution fabrication. Excellent electrode material properties and ultrashort ion transfer distance enable the MSCs to exhibit optimal performances with an ultrahigh power density (14 kW cm−3), ultrahigh energy density (15.6 mWh cm−3) and large areal capacitance (36 mF cm−2). Notably, such miniaturized MSCs in a 100 × 100 μm2 area own superior frequency responses (1221 Hz) and time constant (0.82 ms), which are suitable for AC line filters and other high-power demanded electronic devices. This method successfully solves the problem of maintaining performance in the miniaturization of MSCs, allowing next-generation microelectronic devices to be developed.
KW - 1T-phase MoS
KW - Laser direct writing
KW - Micro-supercapacitor
KW - Miniaturization
KW - Power density
UR - http://www.scopus.com/inward/record.url?scp=85075386151&partnerID=8YFLogxK
U2 - 10.1016/j.nanoen.2019.104260
DO - 10.1016/j.nanoen.2019.104260
M3 - Article
AN - SCOPUS:85075386151
SN - 2211-2855
VL - 67
JO - Nano Energy
JF - Nano Energy
M1 - 104260
ER -