2015
DOI: 10.1021/acs.chemmater.5b02935
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Elucidating the Role of Defects for Electrochemical Intercalation in Sodium Vanadium Oxide

Abstract: Na 1.25+x V 3 O 8 (with x < 0, = 0, and > 0) was synthesized via a wet chemical route involving the reduction of V 2 O 5 in oxalic acid and NaNO 3 followed by calcination. It was possible to control the sodium composition in the final product by adjusting the amount of sodium precursor added during synthesis. It was revealed that deficient and excessive sodium contents, with respect to the ideal stoichiometry, are accommodated or compensated by the respective generation of oxygen vacancies and partial transiti… Show more

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Cited by 30 publications
(20 citation statements)
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“…Figure c compares the CVs at various scanning rates from 0.1 to 1.0 mV s −1 . With increased scanning rates, the cathodic peak displayed a slight shift towards lower potential, attributable to the polarization as reported widely in electrode materials . The peak current densities in cathodic and anodic scans at different scanning rates are used to calculate the Li‐ion diffusion coefficient; the apparent diffusion coefficients of Li ions in MnNCN were calculated based on the Randles–Sevchik equation Inormalp = 0.4463(F3RT)1/2n3/2AD1/2C0v1/2where I p is the peak current (A), R is the gas constant (8.314 J mol −1 K −1 ), T (K) is the absolute temperature, F is the Faraday constant (96 500 C mol −1 ), n is the number of electrons transferred per molecule (2), A is the active surface area of the electrode (0.50 cm 2 ), C 0 is the concentration of Li ions in the electrolyte (1.0 × 10 −3 mol cm −3 ), D is the apparent ion diffusion coefficient (cm 2 s −1 ), and v is the scanning rate (V s −1 ).…”
Section: Resultsmentioning
confidence: 99%
“…Figure c compares the CVs at various scanning rates from 0.1 to 1.0 mV s −1 . With increased scanning rates, the cathodic peak displayed a slight shift towards lower potential, attributable to the polarization as reported widely in electrode materials . The peak current densities in cathodic and anodic scans at different scanning rates are used to calculate the Li‐ion diffusion coefficient; the apparent diffusion coefficients of Li ions in MnNCN were calculated based on the Randles–Sevchik equation Inormalp = 0.4463(F3RT)1/2n3/2AD1/2C0v1/2where I p is the peak current (A), R is the gas constant (8.314 J mol −1 K −1 ), T (K) is the absolute temperature, F is the Faraday constant (96 500 C mol −1 ), n is the number of electrons transferred per molecule (2), A is the active surface area of the electrode (0.50 cm 2 ), C 0 is the concentration of Li ions in the electrolyte (1.0 × 10 −3 mol cm −3 ), D is the apparent ion diffusion coefficient (cm 2 s −1 ), and v is the scanning rate (V s −1 ).…”
Section: Resultsmentioning
confidence: 99%
“…The excess Na in the structure and oxygen vacancies may have important impacts on the electrochemical performance. To clarify the role of defects on the electrochemical performance of Na 1+ x V 3 O 8 , Cao and co‐workers prepared Na 1.25+ x V 3 O 8 (with x < 0, =0, and >0), and compared their sodium storage performance. They demonstrated that oxygen vacancies were generated in the case of Na‐deficiency, while Na excess resulted in partial reduction of the transition metal, or formation of a cation disordered structure.…”
Section: Vanadatesmentioning
confidence: 99%
“…For the layered metal oxide electrode materials, turbostratic disorder has been often observed, where the metal-oxygen (M–O) layers are stacked nearly randomly on top of each other and the oxygen stacking sequences, very different from the close-packed electrode systems mentioned above. Although turbostratic disorder has been attributed to the improved storage capacities for Li- and Na-ions1225, the stability of such disordered electrodes and their corresponding cycling life are still unsatisfactory. Therefore, improving the stability of highly disordered layered electrode materials on the charge–discharge processes without compromising the capacity and rate performance, is of great significance for EES.…”
mentioning
confidence: 99%