| Literature DB >> 31771280 |
Pian Pian Ma1,2, Na Lei1, Bo Yu1, Yong Kun Liu1, Guo Hua Jiang1,2, Jian Ming Dai1, Shu Hong Li1, Qiu Ling Lu1.
Abstract
La-based perovskite-type oxide is a new type of supercapacitor electrode material with great potential. In the present study, LaMnO3/MnO (LMO/MnO) nano-arrays supported by carbon cloth are prepared via a simple one-step electrodeposition as flexible supercapacitor electrodes. The structure, deposit morphology of LMO/MnO, and the corresponding electrochemical properties have been investigated in detail. Carbon cloth-supported LMO/MnO electrode exhibits a specific capacitance of 260 F·g-1 at a current density of 0.5 A·g-1 in 0.5 M Na2SO4 aqueous electrolyte solution. The cooperative effects of LMO and MnO, as well as the uniform nano-array morphology contribute to the good electrochemical performance. In addition, a symmetric supercapacitor with a wide voltage window of 2 V is fabricated, showing a high energy density of 28.15 Wh·kg-1 at a power density of 745 W·kg-1. The specific capacitance drops to 65% retention after the first 500 cycles due to the element leaching effect and partial flaking of LMO/MnO, yet remains stable until 5000 cycles. It is the first time that La-based perovskite has been exploited for flexible supercapacitor applications, and further optimization is expected.Entities:
Keywords: carbon cloth; electrochemical properties; electrodeposition; perovskite-type LaMnO3/MnO; supercapacitor flexible electrode
Year: 2019 PMID: 31771280 PMCID: PMC6956280 DOI: 10.3390/nano9121676
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Schematic representation for the preparation of LMO/MnO electrode.
Figure 2(a) XRD pattern of LMO/MnO electrode prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2; (b) the crystal structure of LMO.
Figure 3(a) SEM images of deposited LMO/MnO electrode prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2; inset shows bare carbon cloth fiber; (b) morphology in high magnification.
Figure 4(a) Bright-field image of LMO/MnO nanoparticles prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2; (b) HRTEM image of the marked area; (c) STEM-EDS mappings of the marked area for different elements of La, Mn and O.
Figure 5(a) Full XPS spectra; (b) La 3d; (c) Mn 2p; and (d) O1s peaks in deconvoluted XPS spectra of LMO/MnO electrode prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2.
Figure 6Electrochemical behavior of LMO/MnO electrode prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2 in 0.5 M Na2SO4 solution: (a) CV curves at different scan rates; (b) GCD curves at different current densities; (c) dependence of specific capacitance vs. current density; and (d) Nyquist plot at open circuit potential; the inset in Figure 6d shows the proposed equivalent circuit with components discussed in the text.
Figure 7(a) Schematic diagram of LMO/MnO symmetrical supercapacitor cell in 0.5 M Na2SO4; (b) CV curves at different scan rates; (c) GCD curves at different current densities; and (d) EIS Nyquist plot of symmetrical cell. The electrodes were prepared from bath with 2 M La(NO3)3 and 0.1 M Mn(NO3)2.
Figure 8Ragone plots of some recently reported supercapacitors based on perovskite oxides compared with the present data.
Figure 9(a) Cycling performance at a current density of 2 A·g−1; (b) SEM image of LMO/MnO electrode after 5000 cycles.