BiFeO3-Montmorillonite intercalated nano composites – synthesis and its characterization
https://doi.org/10.17586/2220-8054-2018-9-5-631-640
Abstract
using ascorbic acid and its optical behavior has been investigated. The characterization of BFO-MMT nano composites has been done using FT-IR, UV-visible, X-ray diffraction (XRD), Scanning Electron Microscope (SEM). Also, electron hole recombination has been investigated by photoluminescence (PL). From the analytical techniques, it has been found BFO entered into the layered host which was proved by elongation of basal plane and therefore agglomerated BFO was formed. The particle size can be calculated by Scherrer formula, is in good agreement with SEM. The strong absorption band in UV-Visible region attributed BFO nano composites can be used for photo catalytic degradation of Rhodamine-B (Rh-B). From the electrochemical studies, BFO-MMT clay nano composites showed a good specific capacitance at a scan rate of 10 mVs−1 .
About the Authors
K. KarthikeyanIndia
Coimbatore, Tamilnadu
A. Thirumoorthi
India
Udumalpet – 642 126, Tamilnadu
References
1. Whittingham M.S., Jacobson A.J. Intercalation Chemistry Academic Press, New York, 1982, P. 1–18.
2. Van Olphen H. An Introduction to Clay Colloid Chemistry, Wiley Inter science, New York, 1977.
3. Zhaohui Hana, Huaiyong Zhu, et al. Nano composites of layered clays and Cadmium sulphide, Similarities and Difference in formation, Structure and properties. Microporous and Mesoporous Materials, 2008, 108, P. 168–182.
4. Peng Yuan, Faiza Annabi-Bergaya, et al. A combined Study by XRD, FTIR, TG and HRTEM on the Structure of delaminated Feintercalated/pillared clay. Journal of Colloid and Interface Science, 2008, 324, P. 142–149.
5. Nithima Khaorapapong, Areeporn Ontam, Jinda Khemprasit, Makoto Ogawa. Formation of MnS- and NiS- Montmorillonites by solidsolid reactions. Applied Clay Science, 2009, 43, P. 238–242.
6. Yasuyuki Arao, Yutaka Hirooka, Katsumi Tsuchiya, Yasushige Mori. Structure and Photoluminescence properties of Zinc Sulfide nanoparticles prepared in a Clay Suspension. J. Phys. Chem. C, 2009, 113, P. 894–899.
7. Peng Wang, Mingming Cheng, Zhonghai Zhang. On different photodecomposition Behaviours of Rhodamine B on Laponite and Montmorillonite Clay under visible light Irradiation. Journal of Saudi Chemical Society, 2014, 18, P. 308–316.
8. Bahranowski K., Gawe l A., et al. Influence of purification method of Na-Montmorillonite on textural properties of clay mineral Composites with TiO2 Nano particles. Applied Clay Science, 2017, 140, P. 75–80.
9. Wengwen Zhang, Zhenbo Ren, et al. Activated Nitrogen-doped porous carbon ensemble on montmorillonite for high-performance supercapacitors. Journal of alloy and compounds, 2018, 743, P. 44–52.
10. Zang Y., Xie D., et al. Enhanced photovoltaic properties in grapheme/ polycrystallineBiFeO3/Pt hetero-junction structure. Appl. Phys. Lett., 2011, 99, P. 132904.
11. Yang S.Y., Seidel J., et al. Above-band gap voltages from Ferroelectric photovoltaic devices. Nat. Nanotechnol., 2010, 5, P. 143–147.
12. Nguyen Anh Tien, Chau Hong Diem, et al, Structural and Magnetic properties of YFe1−xCoxO3 (0.1 ≤ x ≤ 0.5) perovskite nano materials synthesized by Co-precipitation method. Nanosystems: Physics, Chemistry, Mathematics, 2018, 9 (3), P. 424–429.
13. Yang J., Li X., et al. Factors controlling pure-phase Magnetic BiFeO3 powder synthesized by Solution combustion synthesis. Alloys Compd., 2011, 509 (37), P. 9271–9277.
14. Xian T., Yang H., et al. Photo catalytic properties of BiFeO3 nano particles with different sizes. J. Mater. Lett., 2011, 65, P. 1573–1575.
15. Gao F., Chen X., et al. Visible-Light Photocatalytic Properties of Weak Magnetic BiFeO3 Nano particles. J. Adv. Mater., 2007, 19, P. 2889.
16. Lokhande C.D., Dubal D.P. Oh-Shim joo. Metal Oxide thin film based supercapacitors. Current applied Physics, 2011, 11, P. 255–270.
17. Doff D.H., Gangas N.H.J., Allan J.E.M., Coey J.M.D. Preparation and Characterization of iron oxide pillared Montmorillonite. Clay minerals, 1988, 23, P. 367–377.
18. Timofeeva M.N., Panchenko V.N., et al. Effect of nitric acid modification of montmorillonite clay on synthesis of solketal from glycerol and acetone. Catalyst Communications, 2017, 90, P. 65–69.
19. Peng Yuan, Faiza Annabi-Bergaya, et al. A Combined study by XRD, FTIR, TG and HRTEM on the Structure of delaminated Feintercalated/pillared Clay. Journal of colloid and Intreface Science, 2008, 324, P. 142.
20. Yohannan Panicker C., Hema Tresa Varghese, Daizy Philip. FT-IR, FT-Raman and SERS spectra of Vitamin C. Spectochimica Acta Part A, 2006, 65, P. 802–804.
21. Tayyebe Soltani, Mohammad H. Entezari. Sono-synthesis of bismuth ferrite nanoparticles with high photocatalytic activity in degradation of Rhodamine B under solar light irradiation. Chemical engineering Journal, 2013, 223, P. 145–154.
22. Anna Rokicinska, Piotr Natkanski, et al. Co3O4-pillared montmorillonite catalyst synthesized by hydrogel-assisted route for total oxidation of toluene. Applied catalyst B; Environmental, 2016, 195, P. 59.
23. Manikandan D., Mangalaraja R.V., Ananthakumar S., Sivakumar T. Synthesis of metal intercalated clay catalysts for selective hydrogenation reactions. Catalyst in Industry, 2012, 4, P. 215–230.
24. Ruxandra Irina Iliescu, Ecaterina Andronescu, et al. Montmorillonite-alginate nanocomposite beads as drug carrier for oral administration of carboplatin – Preparation and characterization. U. P. B. Sci. Bull., Series B, 2011, 73, P. 3.
25. Min Zhang, Zhenfa Zi, et al. Size Effects on Magnetic Properties of Ni0.5Zn0.5Fe2O4 Prepared by Sol-Gel Method. Advances in Materials Science and Engineering, 2013, 609819, 10 pp.
26. Ajin Sundar S., Joseph John N. Synthesis and studies on structural and optical properties of zinc oxide and manganese-doped zinc oxide Nanoparticles. Nanosystems: Physics Chemistry Mathematics, 2016, 7, P. 1024–1030.
27. Galindo-Gonzlez C., De Vicente J., et al. Preparation and Sedimentation Behavior in Magnetic Fields of Magnetite-Covered Clay Particles. Langmuir, 2005, 21, P. 4410.
28. Baby Suneetha R., Vedhi C. Synthesis, characterization and electrochemical behaviour of Montmorillonite Poly(o-toluidine) nano composites. Applied Clay Science, 2014, 88–89, P. 18–25.
29. Figueras F., Klapyta Z., et al. Use of competitive ion exchange for Intercalation Of montmorillonite with Hydroxy-aluminum cpecies. Clay and clay Minerals, 1990, 38, P. 257–264.
30. Dai J.F., Xian T., Di L.J., Yang H. Preparation of BiFeO3-Graphene Nano composites and their Enhanced Photo Catalytic Activities. Journal of Nano Materials, 2013, 642897, 5 pp.
31. Ramya E., Rajashree. Ch. Nayak., Narayana Rao P.L. New Hybrid organic polymer montmorillonite /chitosan/ Polyphenyenediamine composites for nonlinear optical studies. Applied clay science, 2017, 150, P. 323-332.
32. Yao Y.B., Mak C.L. Optical, ferroelectric and magnetic properties of Multi ferroelectric BiFeO3–(K0.5Na0.5)0.4(Sr0.6Ba0.4)0.8 Nb2O6. Thin films Journal of Alloys and Compounds, 2014, 586, P. 448.
33. Bobby singh soram, Boinis singh ngangom, Sharma H.B. Effect of annealing temperature on the structural and optical properties of sol-gel processed nano crystalline BiFeO3 thin films. Thin solid film, 2012, 524, P. 57–61.
34. Dillip K. Mishra, Xiaoding Qi. Energy levels and photoluminescence properties of Nickel-doped bismuth Ferrite. Journal of Alloys and Compounds, 2010, 504 , P. 27–31.
35. Sunil chauhan, Manoj Kumar, et al. Multiferroic, Magnetoelectric and optical properties of Mn doped BiFeO3 nano particles. Solid state Communications, 2012, 152, P. 525–529.
36. Yu X., An X., Enhanced Magnetic and optical properties of Pure and (Mn, Sr) doped BiFeO3 nano crystals. Solid state communications, 2009, 149, P. 711.
37. Yoon M., Seo M., et al. Synthesis of Liposome-Templated Titania Nanodisks: Optical Properties and Photocatalytic Activities. Chem. Mater., 2005, 17, P. 6069–6079.
38. Li L., Yang Y., et al. Fabrication and charecterization of single- Crytalline ZnTe Nano wire Arrays. J. Phys. Chem. B, 2005, 109, P. 12394–12398.
39. Arulmozhi S., Packiaseeli V., Rajendran R., Vijayalakshmi. Structural, Optical and morphological study of Tungsten selenide thin film. Nanosystems: Physics, Chemistry, Mathematics, 2016, 7, P. 703–706.
40. Huo Y.N., Jin Y., Zhang Y. Citric acid assisted solvothermal synthesis of BiFeO3 Micro spheres with high VisibleLight photocatalytic activity. J. Mol. Cat. A: Chem., 2010, 331, P. 15–20.
41. Bhusahan B., Das D., et al. Enhancing the magnetic characteristics of BiFeO3 nano particles by Ca, Ba co-doping. Material chemistry and physics, 2012, 135, P. 144–149.
42. Balasubramaniam M., Balakumar S. Effect of precipitating agent NaOH on the Prpapration of copper oxide nanostructures for electrochemical applications. Nanosystems: Physics, Chemistry, Mathematics, 2016, 7, P. 482–487.
43. Ramesh Oraon, Amrita Adhikari, Santosh Tiwari, Ganesh Chandra Nayak. Enhanced specific capacitane of self- assembled three dimentional CNT/ Layered Silicate/ Polyaniline hybrid sandwiched nanocomposite for Supercapacitor application. ACS Sustainable chemistry & Engineering, 2016, 4 (3), P. 1392–1403.
44. Hongjuan Li, Gang Zhu, et al. Preparation and Capacitance property of MnO2-pillared Ni2+-Fe3+ layered double hydroxide nanocomposite. Journal of Colloid and Interfac Science, 2010, 345, P. 228–233.
45. Kotz R., Carlen M. Principle and application of electrochemical capacitors. Electrochem. Acta, 2000, 45, P. 2483.
46. Lokhande C.D., Gujar T.P., Shinde V.R., Rajaram S. Mane. Electrochemical Super capacitor application of Perovskite thin films Sung-Hwan Han. Electrochemistry communications, 2007, 9, P. 1805–1809.
Review
For citations:
Karthikeyan K., Thirumoorthi A. BiFeO3-Montmorillonite intercalated nano composites – synthesis and its characterization. Nanosystems: Physics, Chemistry, Mathematics. 2018;9(5):631-640. https://doi.org/10.17586/2220-8054-2018-9-5-631-640