On-Chip MXene Microsupercapacitors for AC-Line Filtering Applications
Type
ArticleAuthors
Jiang, Qiu
Kurra, Narendra
Maleski, Kathleen

Lei, Yongjiu

Liang, Hanfeng

Zhang, Yizhou
Gogotsi, Yury

Alshareef, Husam N.

KAUST Department
Functional Nanomaterials and Devices Research GroupMaterial Science and Engineering Program
Physical Science and Engineering (PSE) Division
KAUST Grant Number
OSR-CRG2016-2963Date
2019-05-28Embargo End Date
2020-05-28Permanent link to this record
http://hdl.handle.net/10754/660630
Metadata
Show full item recordAbstract
Microsupercapacitors (MSCs) with high energy densities offer viable miniaturized alternatives to bulky electrolytic capacitors if the former can respond at the kilo Hertz (kHz) or higher frequencies. Moreover, MSCs fabricated on a chip can be integrated into thin-film electronics in a compatible manner, serving the function of ripple filtering units or harvesters of energy from high-frequency sources. In this work, wafer-scale fabrication is demonstrated of MXene microsupercapacitors with controlled flake sizes and engineered device designs to achieve excellent frequency filtering performance. Specifically, the devices (100 nm thick electrodes and 10 µm interspace) deliver high volumetric capacitance (30 F cm−3 at 120 Hz), high rate capability (300 V s−1), and a very short relaxation time constant (τ0 = 0.45 ms), surpassing conventional electrolytic capacitors (τ0 = 0.8 ms). As a result, the devices are capable of filtering 120 Hz ripples produced by AC line power at a frequency of 60 Hz. This study opens new avenues for exploring miniaturized MXene MSCs as replacements for bulky electrolytic capacitors.Citation
Jiang, Q., Kurra, N., Maleski, K., Lei, Y., Liang, H., Zhang, Y., … Alshareef, H. N. (2019). On-Chip MXene Microsupercapacitors for AC-Line Filtering Applications. Advanced Energy Materials, 1901061. doi:10.1002/aenm.201901061Sponsors
Research reported in this publication was supported by King Abdullah University of Science and Technology (KAUST) under grant number OSR-CRG2016-2963. Authors thank Advanced Nanofabrication, Imaging and Characterization Laboratory at KAUST for experimental support. Samantha Buczek is acknowledged for proof-reading of the manuscript.Publisher
WileyJournal
Advanced Energy MaterialsAdditional Links
https://onlinelibrary.wiley.com/doi/abs/10.1002/aenm.201901061ae974a485f413a2113503eed53cd6c53
10.1002/aenm.201901061