| Literature DB >> 27857225 |
Pawin Iamprasertkun1,2, Atiweena Krittayavathananon1, Anusorn Seubsai2, Narong Chanlek3, Pinit Kidkhunthod3, Winyoo Sangthong4, Santi Maensiri5, Rattikorn Yimnirun5, Sukanya Nilmoung6, Panvika Pannopard7, Somlak Ittisanronnachai7, Kanokwan Kongpatpanich8, Jumras Limtrakul8, Montree Sawangphruk1.
Abstract
Although manganese oxide- andEntities:
Year: 2016 PMID: 27857225 PMCID: PMC5114613 DOI: 10.1038/srep37560
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1FE-SEM images of (a) MnO2 and (b) N-rGOae as well as TEM images of (c) MnO2 and (d) N-rGOae and (e) EDX mapping of MnO2/c-CFP mainly containing C, O, and Mn elements.
Figure 2(a) Raman spectra, (b) XRD patterns of MnO2 and N-rGOae and (c) N2 sorption isoterm and pore size distribution of N-rGOae.
Figure 3(a) C1s and (b) N1s XPS spectra of N-rGOae on c-CFP, (c) XPS survey, and (d) Mn2p XPS of MnO2.
Figure 4(a) CVs of the as-fabricated electrodes at 25 mV s−1 and (b) CVs at different working potentials (50 mV s−1), (c) GCDs at different working potentials (5 A g−1), and (d) specific capacitance and coulombic efficiency vs. applied current density, (e) the b value as a function of potential, and (f) the bar chart of the diffusion-controlled intercalation capacitance vs. scan rates of as-fabricated MnO2//N-rGOae supercapacitor devices.
Figure 5(a) Nyquist plot, (b) phase vs. frequency, (c) capacitance retention over 7,500 cycles, and (d) Ragone plots of the MnO2//N-rGOae supercapacitor compared with other previous work495051.
Figure 6(a) In situ high-resolution Mn K-edge fluorescence XAS spectra of the as-prepared MnO2 electrodes and Mn standard compounds and (b) the oxidation states vs. ΔE (eV) of the MnO2 electrodes during charging/discharging by a chronoamperometry method at applied potentials from 0.0–0.8 V vs. SCE and backward potentials. Note, the XAS was carried out after reaching the steady state.
Figure 7CVs at 25 mVs−1 and in situ EQCM responses of (a) N-rGOae and (b) MnO2 electrodes.