a Cyclic voltammograms of the NiS/C-1.5 at the scan rate of 0.1 mV
![a Cyclic voltammograms of the NiS/C-1.5 at the scan rate of 0.1 mV](https://www.researchgate.net/publication/346490497/figure/fig5/AS:963552697401367@1606740273943/a-Cyclic-voltammograms-of-the-NiS-C-15-at-the-scan-rate-of-01mVs-b-Discharge-charge.png)
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Solved Figure 2.2 shows some cyclic voltammograms for
![](https://pubs.rsc.org/image/article/2023/RA/d3ra06296a/d3ra06296a-f5_hi-res.gif)
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![](https://www.researchgate.net/publication/340546386/figure/fig2/AS:878635326119936@1586494394178/a-Cyclic-voltammograms-of-NiS-x-C-at-a-scan-rate-of-01-mV-s-1-b-Rate-performance.png)
a) Cyclic voltammograms of NiS x @C at a scan rate of 0.1 mV s −1 . b)
![](https://cdn.numerade.com/project-universal/previews/257b8c87-73a8-45a5-82ba-f95f69cc0ded.gif)
SOLVED: Using the following cyclic voltammogram of ferrocene (scan rate: 50 mV/s, concentration: 0.8 mM, working electrode: glassy carbon; working electrode area: 0.8 cm^2, electrolyte: EMIMBF4), estimate the diffusion coefficient (cm^2/s). Assume
![](https://ars.els-cdn.com/content/image/1-s2.0-S027288422200013X-gr10.jpg)
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Journal of Electrochemical Science and Technology
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