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  4. A high-performance lithium-ion capacitor with carbonized NiCo<inf>2</inf>O<inf>4</inf> anode and vertically-aligned carbon nanoflakes cathode
 
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A high-performance lithium-ion capacitor with carbonized NiCo2O4 anode and vertically-aligned carbon nanoflakes cathode

Journal
Energy Storage Materials
Journal Volume
22
Pages
265
Date Issued
2019-11-01
Author(s)
Cheng, Chung Fu
Li, Xiang
Liu, Kewei
Zou, Feng
Tung, Wei Yao
Huang, Yi Fan
Xia, Xuhui
CHIEN LUNG WANG  
Vogt, Bryan D.
Zhu, Yu
DOI
10.1016/j.ensm.2019.07.034
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/636833
URL
https://api.elsevier.com/content/abstract/scopus_id/85072686832
Abstract
Lithium ion capacitors (LICs) are energy storage devices integrating the complementary features of both supercapacitors and lithium ion batteries to simultaneously reach high energy and power densities. One of the major challenges in LIC technology is the kinetic imbalance between the faradaic insertion anode and capacitive cathode. Therefore, the design of electrode materials is crucial to enhance the rate performance of anode and the capacitance of the cathode in LIC devices. In this work, novel LICs were demonstrated with nanostructured cathode and anode. A vertically-aligned carbon nanoflakes (VACNFs) cathode provided high electrochemically active surface area and excellent conductivity, while a metal organic framework (MOF) derived carbonized nickel cobalt oxide (cNiCo2O4) anode ensured fast conversion reactions and remarkable cyclability. Electrochemical characterization of individual electrode confirmed that both electrodes exhibited good electron and ion transport capability. The LICs were fabricated with optimized electrode active materials loading to deliver high energy densities at desired charge/discharge rates. The devices exhibited energy density up to 136.9 W h/kg (at 200 W/kg). At higher power density of 40 kW/kg, under which a full charge-discharge can be finished within 4 s, the LICs could still deliver an energy density of 26.44 W h/kg. The devices also showed a good cycle stability (≈90% capacitance retention after 9000 cycles, under current density of 4 A/g) within the voltage range of 1–4.2 V.
Subjects
Energy storage | Lithium ion capacitor | Metal-organic frameworks | Vertically aligned carbon nanoflakes
Type
journal article

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