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Assessment of Boron Doped Diamond Electrode Quality and Application to In Situ Modification of Local pH by Water Electrolysis
Published on: January 6, 2016
Tuning diffusion coefficient, ionic conductivity, and transference number in rGO/BaCoO3 electrode material for
Mohsin Shahzad1, Farooq Ahmad1,2, M Ibraheem1
1Centre of Excellence in Solid State Physics, University of the Punjab Lahore 54590 Pakistan satiq.cssp@pu.edu.pk.
Abstract:
Due to their remarkable cycle stability and outstanding capacitance, ABO3-type perovskite materials have emerged as highly effective electrode materials, delivering remarkable electrochemical performance. In this study, BaCoO3/rGO composites with varying rGO content (0, 5, 10, and 15%), designated as PBCO, BCO-I, BCO-II, and BCO-III, were synthesized using a solvothermal process. These composites were evaluated for their potential as electrode materials in supercapacitor (SC) applications. X-ray diffraction analysis confirmed the presence of well-crystallized samples with a hexagonal phase structure. Field emission scanning electron microscopy revealed the desired level of porosity, well-defined morphologies, and uniformly distributed grains, which are beneficial for electrochemical applications. Elemental analysis verified the stoichiometric composition of the samples. Comprehensive electrochemical characterization was performed using cyclic voltammetry in a 2 M KOH solution, revealing a transition from diffusive control (EDLC) to hybrid capacitor behavior. Additionally, galvanostatic charge-discharge experiments demonstrated that the BCO-III composite exhibited a specific capacity of 90.15 C g-1, an energy density of 21.28 W h kg-1, and a power density of 531.25 W kg-1. The transference number (t +) is found to be 0.2, which means that higher current will be driven through the anion. Further, the sample BCO-III, exhibiting the highest specific capacity, was evaluated for stability and demonstrated a remarkable retention rate of 90% after 5k GCD cycles and a remarkable coulombic efficiency of 94%, with an excellent diffusion rate and ionic conductivity of about 4.51 × 10-14 cm2 s-1, 0.128 S cm-1, respectively, highlighting its significant potential for SC applications.
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