2017
DOI: 10.1016/j.jallcom.2017.08.031
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Characterization of α-MoO3 anode with aqueous beryllium sulfate for supercapacitors

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Cited by 22 publications
(6 citation statements)
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“…Accordingly, the diffusion coefficients of H + for intercalation and deintercalation are calculated to be 3.305 ± 0.015 × 10 –8 and 1.800 ± 0.017 × 10 –8 cm 2 s –1 , respectively. Remarkably, the diffusion rate of H + in MoO 2+ x films is 10 4 times faster than the previously reported diffusion coefficient of H + for intercalation in an α-MoO 3 supercapacitor (∼3.32 × 10 –12 cm 2 s –1 ) . This enhanced diffusion rate is attributed to the improved electrical conductivity of the coalesced amorphous nanoparticle film.…”
Section: Resultsmentioning
confidence: 62%
See 1 more Smart Citation
“…Accordingly, the diffusion coefficients of H + for intercalation and deintercalation are calculated to be 3.305 ± 0.015 × 10 –8 and 1.800 ± 0.017 × 10 –8 cm 2 s –1 , respectively. Remarkably, the diffusion rate of H + in MoO 2+ x films is 10 4 times faster than the previously reported diffusion coefficient of H + for intercalation in an α-MoO 3 supercapacitor (∼3.32 × 10 –12 cm 2 s –1 ) . This enhanced diffusion rate is attributed to the improved electrical conductivity of the coalesced amorphous nanoparticle film.…”
Section: Resultsmentioning
confidence: 62%
“…Remarkably, the diffusion rate of H + in MoO 2+x films is 10 4 times faster than the previously reported diffusion coefficient of H + for intercalation in an α-MoO 3 supercapacitor (∼3.32 × 10 −12 cm 2 s −1 ). 39 This enhanced diffusion rate is attributed to the improved electrical conductivity of the coalesced amorphous nanoparticle film. To further understand the electrochemical behavior of this electrode, the galvanostatic charge/discharge processes were measured under different current densities.…”
mentioning
confidence: 99%
“…RuO 2 has been widely studied as pseudocapacitive material for understanding the fundamental behavior of oxide materials as well as for practical applications [12,13]. In order to reduce the device cost, metal oxides and sulphides such as NiO, Co 3 O 4 , CuO, MnO 2 , V 2 O 5 , Fe 2 O 3 , MoO 3 , and CoS have been widely studied for charge storage applications [14][15][16][17][18][19][20][21][22][23]. In comparison to binary oxides/sulfides, ternary transition metal oxides/sulfides exhibit higher conductivity and provide a richer redox reaction resulting from the synergistic effect of binary and ternary metal ions [11].…”
Section: Introductionmentioning
confidence: 99%
“…[29][30][31][32] Therefore, MoO 3 has been considered one of the promising electrode materials for supercapacitors. [33][34][35][36][37] Furthermore, the fabrication or construction of MoO 3 with a special morphology has gained a certain achievement. For instance, Wang et al synthesized a-MoO 3 nanobelts by a hydrothermal synthesis technique and treated the sample using LiCl for lithiation.…”
Section: Introductionmentioning
confidence: 99%