A mini-review of ferrites-based photocatalyst on application of hydrogen production

Haoxuan MA , Chunli LIU

Front. Energy ›› 2021, Vol. 15 ›› Issue (3) : 621 -630.

PDF (1919KB)
Front. Energy ›› 2021, Vol. 15 ›› Issue (3) : 621 -630. DOI: 10.1007/s11708-021-0761-0
MINI REVIEW
MINI REVIEW

A mini-review of ferrites-based photocatalyst on application of hydrogen production

Author information +
History +
PDF (1919KB)

Abstract

Photocatalytic water splitting for hydrogen production is a promising strategy to produce renewable energy and decrease production cost. Spinel-ferrites are potential photocatalysts in photocatalytic reaction system due to their room temperature magnetization, the high thermal and chemical stability, narrow bandgap with broader visible light absorption, and proper conduction band energy level with strong oxidation activity for water or organic compounds. However, the fast recombination of the photoexcited electrons and holes is a critical drawback of ferrites. Therefore, the features of crystallinity, particle size, specific surface area, morphology, and band energy structure have been summarized and investigated to solve this issue. Moreover, composites construction with ferrites and the popular support of TiO2 or g-C3N4 are also summarized to illustrate the advanced improvement in photocatalytic hydrogen production. It has been shown that ferrites could induce the formation of metal ions impurity energy levels in TiO2, and the strong oxidation activity of ferrites could accelerate the oxidation reaction kinetics in both TiO2/ferrites and g-C3N4/ferrites systems. Furthermore, two representative reports of CaFe2O4/MgFe2O4 composite and ZnFe2O4/CdS composite are used to show the efficient heterojunction in a ferrite/ferrite composite and the ability of resistance to photo-corrosion, respectively.

Graphical abstract

Keywords

photocatalyst / spinel-ferrite / composite / photocatalytic hydrogen production

Cite this article

Download citation ▾
Haoxuan MA, Chunli LIU. A mini-review of ferrites-based photocatalyst on application of hydrogen production. Front. Energy, 2021, 15(3): 621-630 DOI:10.1007/s11708-021-0761-0

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Dincer I, Acar C. Review and evaluation of hydrogen production methods for better sustainability. International Journal of Hydrogen Energy, 2015, 40(34): 11094–11111

[2]

Kalamaras C M, Efstathiou A M. Hydrogen production technologies: current state and future developments. Conference Papers in Science. Hindawi, 2013, available at the website of hindawi.com

[3]

Maeda K, Domen K. Photocatalytic water splitting: recent progress and future challenges. Journal of Physical Chemistry Letters, 2010, 1(18): 2655–2661

[4]

Fujishima A, Honda K. Electrochemical photolysis of water at a semiconductor electrode. Nature, 1972, 238(5358): 37–38

[5]

Navlani-García M, Mori K, Kuwahara Y, . Recent strategies targeting efficient hydrogen production from chemical hydrogen storage materials over carbon-supported catalysts. NPG Asia Materials, 2018, 10(4): 277–292

[6]

Fajrina N, Tahir M. A critical review in strategies to improve photocatalytic water splitting towards hydrogen production. International Journal of Hydrogen Energy, 2019, 44(2): 540–577

[7]

Bessekhouad Y, Trari M. Photocatalytic hydrogen production from suspension of spinel powders AMn2O4 (A= Cu and Zn). International Journal of Hydrogen Energy, 2002, 27(4): 357–362

[8]

Muthuselvam I P, Bhowmik R N. Structural phase stability and magnetism in Co2FeO4 spinel oxide. Solid State Sciences, 2009, 11(3): 719–725

[9]

Brabers V A M. Progress in spinel ferrite research. In: Brück E, ed. Handbook of Magnetic Materials. Elsevier, 1995

[10]

Jia Y, Ma H, Zhang W, . Z-scheme SnFe2O4-graphitic carbon nitride: reusable, magnetic catalysts for enhanced photocatalytic CO2 reduction. Chemical Engineering Journal, 2020, 383: 123172

[11]

Guo D, Kang H, Wei P, . A high-performance bimetallic cobalt iron oxide catalyst for the oxygen evolution reaction. CrystEngComm, 2020, 22(25): 4317–4323

[12]

Hong D, Yamada Y, Nagatomi T, . Catalysis of nickel ferrite for photocatalytic water oxidation using [Ru(bpy)3]2+ and S2O82–. Journal of the American Chemical Society, 2012, 134(48): 19572–19575

[13]

Xiong Y, Yang Y, Feng X, . A strategy for increasing the efficiency of the oxygen reduction reaction in Mn-doped cobalt ferrites. Journal of the American Chemical Society, 2019, 141(10): 4412–4421

[14]

Preethi V, Kanmani S. Photocatalytic hydrogen production. Materials Science in Semiconductor Processing, 2013, 16(3): 561–575

[15]

Bhatt M D, Lee J S. Nanomaterials for photocatalytic hydrogen production: from theoretical perspectives. RSC Advances, 2017, 7(55): 34875–34885

[16]

Yang X, Wang D. Photocatalysis: from fundamental principles to materials and applications. ACS Applied Energy Materials, 2018, 1(12): 6657–6693

[17]

Taffa D H, Dillert R, Ulpe A C, . Photoelectrochemical and theoretical investigations of spinel type ferrites (MxFe3−xO4) for water splitting: a mini-review. Journal of Photonics for Energy, 2016, 7(1): 012009

[18]

Szotek Z, Temmerman W M, Ködderitzsch D, . Electronic structures of normal and inverse spinel ferrites from first principles. Physical Review. B, 2006, 74(17): 174431

[19]

Mathew D S, Juang R S. An overview of the structure and magnetism of spinel ferrite nanoparticles and their synthesis in microemulsions. Chemical Engineering Journal, 2007, 129(1–3): 51–65

[20]

Holinsworth B S, Mazumdar D, Sims H, . Chemical tuning of the optical band gap in spinel ferrites: CoFe2O4 vs NiFe2O4. Applied Physics Letters, 2013, 103(8): 082406

[21]

Rekhila G, Bessekhouad Y, Trari M. Visible light hydrogen production on the novel ferrite NiFe2O4. International Journal of Hydrogen Energy, 2013, 38(15): 6335–6343

[22]

Ortega López Y, Medina Vázquez H, Salinas Gutiérrez J, . Synthesis method effect of CoFe2O4 on its photocatalytic properties for H2 production from water and visible light. Journal of Nanomaterials, 2015, 2015: 1–9

[23]

Peng T, Zhang X, Lv H, . Preparation of NiFe2O4 nanoparticles and its visible-light-driven photoactivity for hydrogen production. Catalysis Communications, 2012, 28: 116–119

[24]

Hong D, Yamada Y, Sheehan M, . Mesoporous nickel ferrites with spinel structure prepared by an aerosol spray pyrolysis method for photocatalytic hydrogen evolution. ACS Sustainable Chemistry & Engineering, 2014, 2(11): 2588–2594

[25]

Guzmán-Velderrain V, Meléndez Zaragoza M, . Photocatalytic hydrogen production under visible light over magnesium ferrite. In: XIV International Congress of the Mexican Hydrogen Society Cancun, Mexico, 2014

[26]

Zazoua H, Boudjemaa A, Chebout R, . Enhanced photocatalytic hydrogen production under visible light over a material based on magnesium ferrite derived from layered double hydroxides (LDHs). International Journal of Energy Research, 2014, 38(15): 2010–2018

[27]

Saadi S, Bouguelia A, Trari M. Photoassisted hydrogen evolution over spinel CuM2O4 (M= Al, Cr, Mn, Fe and Co). Renewable Energy, 2006, 31(14): 2245–2256

[28]

Yang H, Yan J, Lu Z, . Photocatalytic activity evaluation of tetragonal CuFe2O4 nanoparticles for the H2 evolution under visible light irradiation. Journal of Alloys and Compounds, 2009, 476(1–2): 715–719

[29]

Lv H, Ma L, Zeng P, . Synthesis of floriated ZnFe2O4 with porous nanorod structures and its photocatalytic hydrogen production under visible light. Journal of Materials Chemistry, 2010, 20(18): 3665–3672

[30]

Dom R, Subasri R, Hebalkar N Y, . Synthesis of a hydrogen producing nanocrystalline ZnFe2O4 visible light photocatalyst using a rapid microwave irradiation method. RSC Advances, 2012, 2(33): 12782–12791

[31]

Rodríguez-Rodríguez A A, Moreno-Trejo M B, Meléndez-Zaragoza M J, . Spinel-type ferrite nanoparticles: synthesis by the oil-in-water microemulsion reaction method and photocatalytic water-splitting evaluation. International Journal of Hydrogen Energy, 2019, 44(24): 12421–12429

[32]

Zhang B Q, Lu L, Lai M O. Evolution of vacancy densities in powder particles during mechanical milling. Physica B, Condensed Matter, 2003, 325: 120–129

[33]

Geng Y, Ablekim T, Mukherjee P, . High-energy mechanical milling-induced crystallization in Fe32Ni52Zr3B13. Journal of Non-Crystalline Solids, 2014, 404: 140–144

[34]

Jia Y, Ma H, Liu C. Au nanoparticles enhanced Z-scheme Au-CoFe2O4/MoS2 visible light photocatalyst with magnetic retrievability. Applied Surface Science, 2019, 463: 854–862

[35]

Singh R, Dutta S. A review on H2 production through photocatalytic reactions using TiO2/TiO2-assisted catalysts. Fuel, 2018, 220: 607–620

[36]

Haw C, Chiu W, Abdul Rahman S, . The design of new magnetic-photocatalyst nanocomposites (CoFe2O4–TiO2) as smart nanomaterials for recyclable-photocatalysis applications. New Journal of Chemistry, 2016, 40(2): 1124–1136

[37]

Gupta V K, Eren T, Atar N, . CoFe2O4@TiO2 decorated reduced graphene oxide nanocomposite for photocatalytic degradation of chlorpyrifos. Journal of Molecular Liquids, 2015, 208: 122–129

[38]

Ghosh B K, Moitra D, Chandel M, . Preparation of TiO2/cobalt ferrite/reduced graphene oxide nanocomposite based magnetically separable catalyst with improved photocatalytic activity. Journal of Nanoscience and Nanotechnology, 2017, 17(7): 4694–4703

[39]

Wei F, Wang H, Ran W, . Preparation of S–N co-doped CoFe2O4@rGO@TiO2 nanoparticles and their superior UV-Vis light photocatalytic activities. RSC Advances, 2019, 9(11): 6152–6162

[40]

Yu Y Y, Zhang H Q. Reduced graphene oxide coupled magnetic CuFe2O4-TiO2 nanoparticles with enhanced photocatalytic activity for methylene blue degradation. Chinese Journal of Structural Chiemistry, 2016, 35(3): 472–480

[41]

Jia Y, Liu J, Cha S, . Magnetically separable Au-TiO2/nanocube ZnFe2O4 composite for chlortetracycline removal in wastewater under visible light. Journal of Industrial and Engineering Chemistry, 2017, 47: 303–314

[42]

Li C J, Wang J N, Wang B, . A novel magnetically separable TiO2/CoFe2O4 nanofiber with high photocatalytic activity under UV–Vis light. Materials Research Bulletin, 2012, 47(2): 333–337

[43]

Hafeez H Y, Lakhera S K, Narayanan N, . Environmentally sustainable synthesis of a CoFe2O4–TiO2/rGO ternary photocatalyst: a highly efficient and stable photocatalyst for high production of hydrogen (solar fuel). ACS Omega, 2019, 4(1): 880–891

[44]

Hafeez H Y, Lakhera S K, Karthik P, . Facile construction of ternary CuFe2O4-TiO2 nanocomposite supported reduced graphene oxide (rGO) photocatalysts for the efficient hydrogen production. Applied Surface Science, 2018, 449: 772–779

[45]

Kim H S, Kim D, Kwak B S, . Synthesis of magnetically separable core@shell structured NiFe2O4@TiO2 nanomaterial and its use for photocatalytic hydrogen production by methanol/water splitting. Chemical Engineering Journal, 2014, 243: 272–279

[46]

Wen J, Xie J, Chen X, . A review on g-C3N4-based photocatalysts. Applied Surface Science, 2017, 391: 72–123

[47]

Wang X, Maeda K, Thomas A, . A metal-free polymeric photocatalyst for hydrogen production from water under visible light. Nature Materials, 2009, 8(1): 76–80

[48]

Babu B, Koutavarapu R, Shim J, . Enhanced visible-light-driven photoelectrochemical and photocatalytic performance of Au-SnO2 quantum dot-anchored g-C3N4 nanosheets. Separation and Purification Technology, 2020, 240: 116652

[49]

Wang S, He P, Jia L, . Nanocoral-like composite of nickel selenide nanoparticles anchored on two-dimensional multi-layered graphitic carbon nitride: a highly efficient electrocatalyst for oxygen evolution reaction. Applied Catalysis B: Environmental, 2019, 243: 463–469

[50]

Yousaf M U, Pervaiz E, Minallah S, . Tin oxide quantum dots decorated graphitic carbon nitride for enhanced removal of organic components from water: green process. Results in Physics, 2019, 14: 102455

[51]

Wang L, Si W, Tong Y, . Graphitic carbon nitride (g-C3N4)-based nanosized heteroarrays: promising materials for photoelectrochemical water splitting. Carbon Energy, 2020, 2(2): 223–250

[52]

Chen J, Zhao D, Diao Z, . Bifunctional modification of graphitic carbon nitride with MgFe2O4 for enhanced photocatalytic hydrogen generation. ACS Applied Materials & Interfaces, 2015, 7(33): 18843–18848

[53]

Chen J, Zhao D, Diao Z, . Ferrites boosting photocatalytic hydrogen evolution over graphitic carbon nitride: a case study of (Co, Ni) Fe2O4 modification. Science Bulletin, 2016, 61(4): 292–301

[54]

Aksoy M, Yanalak G, Aslan E, . Visible light-driven hydrogen evolution by using mesoporous carbon nitride-metal ferrite (MFe2O4/mpg-CN; M: Mn, Fe, Co and Ni) nanocomposites as catalysts. International Journal of Hydrogen Energy, 2020, 45(33): 16509–16518

[55]

Kim H G, Borse P H, Jang J S, . Fabrication of CaFe2O4/MgFe2O4 bulk heterojunction for enhanced visible light photocatalysis. Chemical Communications, 2009, (39): 5889–5891

[56]

Yu T H, Cheng W Y, Chao K J, . ZnFe2O4 decorated CdS nanorods as a highly efficient, visible light responsive, photochemically stable, magnetically recyclable photocatalyst for hydrogen generation. Nanoscale, 2013, 5(16): 7356–7360

RIGHTS & PERMISSIONS

Higher Education Press

AI Summary AI Mindmap
PDF (1919KB)

6486

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/