Band gap engineering of Gd and Co doped BiFeO3 and their application in hydrogen production through photoelectrochemical route. (7th September 2017)
- Record Type:
- Journal Article
- Title:
- Band gap engineering of Gd and Co doped BiFeO3 and their application in hydrogen production through photoelectrochemical route. (7th September 2017)
- Main Title:
- Band gap engineering of Gd and Co doped BiFeO3 and their application in hydrogen production through photoelectrochemical route
- Authors:
- Vishwakarma, Alok K.
Tripathi, Prashant
Srivastava, Amit
Sinha, A.S.K.
Srivastava, O.N. - Abstract:
- Abstract: The present report deals with the synthesis of Gd and Co doped BiFeO3 (BFO) i.e. Bi1-x Gdx Fe1-y Coy O3 (BGFCO, x = 0.0, 0.1; y = 0, 0.05, 0.10, 0.20, 0.25) nanoparticles by sol–gel method. The co-doping leads to band gap engineering of BiFeO3 with the band gap varying from 2.23 eV to 1.77 eV. The band gap engineering coupled with UV–Vis spectroscopy has been used to find the optimum material. The significant lowering in the band gap of the doped BFO is attributed to the deformation produced in Fe–O octahedron geometry as well as rearrangement in its molecular orbitals. The band gap engineering leads to materials with improved solar spectral response which in turn results in better harvesting of solar energy. X-ray diffraction (XRD) patterns indicate the formation of pure phase of BiFeO3 and its doped variants. The surface morphologies and particle sizes of different compositions have been investigated through scanning electron microscope (SEM). The as synthesized BFO as well as its doped variants have been used as photoanodes for hydrogen production through photoelectrochemical (PEC) splitting of water. The optimum material Bi0.9 Gd0.1 Fe0.75 Co0.25 O3 (BGFCO-25) with band gap of 1.77 eV has been used as photoanode having PEC configuration of 1 mol/L NaOH as the electrolyte solution and the Pt as cathode using 1.5 AM UV–Vis illumination. This has produced the photocurrent density of 2.03 mA/cm 2 and hydrogen production rate of 74.57 μmol cm −2 h −1 . The maximumAbstract: The present report deals with the synthesis of Gd and Co doped BiFeO3 (BFO) i.e. Bi1-x Gdx Fe1-y Coy O3 (BGFCO, x = 0.0, 0.1; y = 0, 0.05, 0.10, 0.20, 0.25) nanoparticles by sol–gel method. The co-doping leads to band gap engineering of BiFeO3 with the band gap varying from 2.23 eV to 1.77 eV. The band gap engineering coupled with UV–Vis spectroscopy has been used to find the optimum material. The significant lowering in the band gap of the doped BFO is attributed to the deformation produced in Fe–O octahedron geometry as well as rearrangement in its molecular orbitals. The band gap engineering leads to materials with improved solar spectral response which in turn results in better harvesting of solar energy. X-ray diffraction (XRD) patterns indicate the formation of pure phase of BiFeO3 and its doped variants. The surface morphologies and particle sizes of different compositions have been investigated through scanning electron microscope (SEM). The as synthesized BFO as well as its doped variants have been used as photoanodes for hydrogen production through photoelectrochemical (PEC) splitting of water. The optimum material Bi0.9 Gd0.1 Fe0.75 Co0.25 O3 (BGFCO-25) with band gap of 1.77 eV has been used as photoanode having PEC configuration of 1 mol/L NaOH as the electrolyte solution and the Pt as cathode using 1.5 AM UV–Vis illumination. This has produced the photocurrent density of 2.03 mA/cm 2 and hydrogen production rate of 74.57 μmol cm −2 h −1 . The maximum photo-conversion efficiency has been found to be 2.29% for BGFCO-25 which is higher than that of BFO in which it is 0.76%. This noteworthy enhancement in the photoelectrochemical properties is ascribed to narrowing of the band gap which improves the solar spectral response and allows the absorption of higher density of photons. The stability test of the photoanode has been done through chronoamperometry technique. Graphical abstract: The present report deals with the synthesis of Gd and Co doped BiFeO3 (BFO) to Bi1-x Gdx Fe1-y Coy O3 (BGFCO, x = 0.0, 0.1; y = 0, 0.05, 0.10, 0.20, 0.25) nanoparticles by sol-gel method. The co-doping leads to band gap engineering of BiFeO3 with the band gap varying from 2.23 eV to 1.77 eV. The band gap engineering leads to materials with improved solar spectral response which in turn results in better harvesting of solar energy. X-ray diffraction (XRD) patterns indicate the formation of pure phase of BiFeO3 and its doped variants. The surface morphologies and particle size of different compositions were investigated through scanning electron microscope (SEM). The as synthesized BFO as well as its doped variants have been used as photoanodes for hydrogen production through photoelectrochemical (PEC) splitting of water. The optimum material Bi0.9 Gd0.1 Fe0.75 Co0.25 O3 (BGFCO-25) with band gap of 1.77 eV has been used as photoanode having PEC configuration of 1 mol/L NaOH as the electrolyte solution and the Pt as cathode using 1.5 AM UV–Vis illumination. This has produced the photocurrent density of 2.03 mA/cm 2 and hydrogen production rate of 74.57 μmol cm −2 h −1 . The maximum photo-conversion efficiency has been found to be 2.29% for BGFCO-25 which is higher than that of BFO in which it is 0.76%. Highlights: Synthesis of Bi1-x Gdx Fe1-y Coy O3 (x = 0.0, 0.1: y = 0, 0.05, 0.10, 0.20, 0.25) NPs have been done. The band-gap of BFO NPs was tailored from 2.23 to 1.77 eV by co-doping of Gd and Co. These BFO as well as its doped variants were used as photoanodes for PEC hydrogen production. The maximum photo-conversion efficiency has been found to be 2.29%. … (more)
- Is Part Of:
- International journal of hydrogen energy. Volume 42:Number 36(2017)
- Journal:
- International journal of hydrogen energy
- Issue:
- Volume 42:Number 36(2017)
- Issue Display:
- Volume 42, Issue 36 (2017)
- Year:
- 2017
- Volume:
- 42
- Issue:
- 36
- Issue Sort Value:
- 2017-0042-0036-0000
- Page Start:
- 22677
- Page End:
- 22686
- Publication Date:
- 2017-09-07
- Subjects:
- BiFeO3 doped -- Band gap engineering -- Photoelectrochemical -- Hydrogen production
Hydrogen as fuel -- Periodicals
Hydrogène (Combustible) -- Périodiques
Hydrogen as fuel
Periodicals
665.81 - Journal URLs:
- http://www.sciencedirect.com/science/journal/03603199 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ijhydene.2017.07.153 ↗
- Languages:
- English
- ISSNs:
- 0360-3199
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.290000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 4636.xml