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Perovskite BiFeO3 nanocatalysts for electrochemical water oxidation

  • Brief Communication: Nano-structured materials (particles, fibers, colloids, composites, etc.)
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Abstract

Perovskite BiFeO3 nanocatalyst electrodes for electrochemical water oxidation were fabricated using mineralizing agents, such as potassium hydroxide (KOH) and sodium hydroxide (NaOH) to produce two different kinds of morphologies, such as BiFeO3 nanocubes and nanorods by hydrothermal method. Pure-phase, good-quality rhombohedral BiFeO3 produced by NaOH was revealed by X-ray powder diffraction (XRD). Five intrinsic phonon vibration modes [Eg(1)+Ag(1)+Ag(2)+Ag(3)+Ag(4)] of rhombohedral BiFeO3 nanostructures were confirmed by Raman spectra. The optical properties of both nanocubes and nanorods were investigated by photoluminescence (PL) and UV-vis diffuse reflection spectra (UV-vis DRS). The optical bandgap of nanocubes and nanorods estimated by Tauc plot was 2.88 and 2.94 eV. The role of a mineralizing agent that strongly influenced the morphology of BiFeO3 was revealed by scanning electron microscope (SEM) images of nanocubes synthesized by KOH and nanorods by NaOH. Electrochemical water oxidation by the cyclic voltammogram (CV) study for nanorods exhibited a higher specific capacitance of 156 F/g at 10 mV/s scan rate and possessed higher water oxidation catalytic activity observed by the current density of 1.77 mA/g at 10 mV/s from the linear sweep voltammogram (LSV) study and higher ionic mobility and conductivity with a smaller Tafel slope value of 229 mV/dec. The stability was reported for 4 h for both the electrodes with 99% activity.

Highlights

  • BiFeO3 nanorods exhibited a higher specific capacitance of 156 F/g at 10 mV/s.

  • Higher water oxidation by current density of 1.77 mA/g at 10 mV/s.

  • Higher ionic mobility and conductivity with a smaller Tafel slope value of 229 mV/dec.

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References

  1. Zou J, Jiang J, Zhang Y, Ma J, Wan Q (2012) A comparative study of the optical, magnetic and electrocatalytic properties of nano BiFeO3 with different morphologies. Mater Lett 72:134–136

    Article  Google Scholar 

  2. Tong T, Chen J, Jin D, Cheng J (2017) Preparation and gas sensing characteristics of BiFeO3 crystallites. Mater Lett 197:160–162

    Article  Google Scholar 

  3. Duraia L, Moorthy B, Issac Thomas C, Kyung Kim D, Kamala Bharathi K (2017) Electrochemical properties of BiFeO3 nanoparticles: Anode material for sodium-ion battery application. Mater Sci Semicond Process 68:165–171

    Article  Google Scholar 

  4. Mou J, Wu H, Deng Y, Zhou L, Zheng Q, Liao J, Lin D (2017) BiFeO3-coated spinel LiNi0.5Mn1.5O4 with improved electrochemical performance as cathode materials for lithium-ion batteries. J Solid State Electrochem 21:2849–2858

    Article  Google Scholar 

  5. Khajonrit J, Wongpratat U, Kidkhunthod P, Pinitsoontorn S, Maensiri S (2018) Effects of Co doping on magnetic and electrochemical properties of BiFeO3 nanoparticles. J Magn Magn Mater 449:423–434

    Article  Google Scholar 

  6. Jansi Rani B, Praveen Kumar M, Ravi G, Ravichandran S, Guduru Ramesh K, Yuvakkumar R (2019) Electrochemical and photoelectrochemical water oxidation of solvothermally synthesized Zr-doped α-Fe2O3 nanostructures. Appl Surf Sci 471:733–744

    Article  Google Scholar 

  7. Nathanael AJ, Yuvakkumar R, Hong SI, Oh TH (2014) Novel zirconium nitride and hydroxyapatite nanocomposite coating: detailed analysis and functional properties. ACS Appl Mater Interfaces 6:9850–9857

    Article  Google Scholar 

  8. Yuvakkumar R, Hong SI (2014) Green synthesis of spinel magnetite iron oxide nanoparticles. Adv Mater Res 1051:39–42

    Article  Google Scholar 

  9. Saravanakumar B, Lakshmi SM, Ravi G, Ganesh V, Sakunthala A, Yuvakkumar R (2017) Electrochemical properties of rice-like copper manganese oxide (CuMn2O4) nanoparticles for pseudocapacitor applications. J Alloys Compd 723:115–122

    Article  Google Scholar 

  10. Suriyaprabha R, Karunakaran G, Yuvakkumar R, Rajendran V, Kannan N (2014) Foliar application of silica nanoparticles on the phytochemical responses of maize (Zea mays l.) and its toxicological behavior. Synth React Inorg Metal-Organic M 44:1128–1131

    Article  Google Scholar 

  11. Saravanakumar B, Ramachandran SP, Ravi G, Ganesh V, Sakunthala A, Yuvakkumar R (2017) Morphology dependent electrochemical capacitor performance of NiMoO4 nanoparticles. Mater Lett 209:1–4

    Article  Google Scholar 

  12. Dhineshbabu NR, Manivasakan P, Yuvakkumar R, Prabu P, Rajendran V (2013) Enhanced functional properties of ZrO2/SiO2 hybrid nanosol coated cotton fabrics. J Nanosci Nanotechnol 13:4017–4024

    Article  Google Scholar 

  13. Ho Han S, Sun Kim K, Gi Kim H, Lee HG, Won Kang H, Seog Kim J, Cheon CI (2010) Synthesis and characterization of multiferroic BiFeO3 powders fabricated by hydrothermal method. Ceram Int 36:1365–1372

    Article  Google Scholar 

  14. Zhou Q, Lin Y, Lu M, Tang D (2017) Bismuth ferrite-based photoactive materials for the photoelectrochemical detection of disease biomarkers coupled with multifunctional mesoporous silica nanoparticles. J Mater Chem B 5:9600–9607

    Article  Google Scholar 

  15. Singh A, Khan ZR, Vilarinho PM, Gupta V, Katiyar RS (2014) Influence of thickness on optical and structural properties of BiFeO3 thin films: PLD grown. Mater Res Bull 49:531–536

    Article  Google Scholar 

  16. Mishra DK, Qi XD (2010) Energy levels and photoluminescence properties of nickel-doped bismuth ferrite. J Alloys Compd 504:27

    Article  Google Scholar 

  17. Ishaq B, Murtaza G, Sharif S, Khan MA, Akhtar N, Wille IG, Saleem M, Ramayg SM (2016) Investigating the effect of Cd-Mn co-doped nano-sized BiFeO3 on its physical properties. Results Phys 6:675–682

    Article  Google Scholar 

  18. Rani BJ, Ravi G, Ravichandran S, Ganesh V, Ameen Fuad, Al-Sabri A, Yuvakkumar R (2018) Electrochemically active XWO4 (X  =  Co, Cu, Mn, Zn) nanostructure for water splitting applications. Appl Nanosci 8:1241–1258

    Article  Google Scholar 

  19. Arora M, Chandra Sati P, Chauhan S, Kumar M, Chhoker S (2014) Structural, magnetic and optical properties of Ho–Co codoped BiFeO3 nanoparticles. Mater Lett 132:327–330

    Article  Google Scholar 

  20. Singh M, Goyal M, Devlal K (2018) Size and shape effects on the band gap of semiconductor compound nanomaterials. J Taibah Univ Sci 12:470–475

    Article  Google Scholar 

  21. Jansi Rani B, Ravina M, Ravi G, Ravichandran S, Ganesh V, Yuvakkumar R (2018) Synthesis and characterization of hausmannite (Mn3O4) nanostructures. Surf Interfaces 11:28–36

    Article  Google Scholar 

  22. Khajonrit J, Prasoetsopha N, Sinprachim T, Kidkhunthod P, Pinitsoontorn S, Maensiri S (2017) Structure, characterization, and magnetic/electrochemical properties of Ni-doped BiFeO3 nanoparticles. Adv Nat Sci Nanosci Nanotechnol 8:015010

    Article  Google Scholar 

  23. Hwan Oha S, Park JS, Su Joa M, Chan Kang Y, Cho JS (2018) Design and synthesis of tube-in-tube structured NiO nanobelts with superior electrochemical properties for lithium-ion storage. Chem Eng J 347:889–899

    Article  Google Scholar 

  24. Santara B, Giri PK, Imakita K, Fujii M (2013) Evidence of oxygen vacancy induced room temperature ferromagnetism in solvothermally synthesized undoped TiO2 nanoribbons. Nanoscale 5:5476–5488

    Article  Google Scholar 

  25. Sarkar AKS, Sarkar D, Khan GG, Mandal K (2015) Three-dimensional nanoarchitecture of BiFeO3 anchored TiO2 nanotube arrays for electrochemical energy storage and solar energy conversion. ACS Sus Chem Eng 3:2254–2263

    Article  Google Scholar 

  26. Fey GTK, Chen JG, Subramanian V, Osaka T (2002) Preparation and electrochemical properties of Zn-doped LiNi0.8Co0.2O2. J Power Sources 112:384–394

    Article  Google Scholar 

Download references

Acknowledgements

This work was supported by UGC Start-Up Research Grant No.F.30-326/2016 (BSR). This article has been written with the financial support of RUSA-Phase 2 grant sanctioned vide Letter No. 24-51/2014-U, Policy (TNMulti-Gen), Department of Education of Government of India, Dt.10.09.2018.

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Correspondence to R. Yuvakkumar.

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Rani, B.J., Ravi, G., Yuvakkumar, R. et al. Perovskite BiFeO3 nanocatalysts for electrochemical water oxidation. J Sol-Gel Sci Technol 91, 247–254 (2019). https://doi.org/10.1007/s10971-019-05036-w

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  • DOI: https://doi.org/10.1007/s10971-019-05036-w

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