Have a personal or library account? Click to login
Bio-dielectric based on superconductors yttrium calcium barium copper oxide (YCaBa2Cu3O7−x) from eggshell as calcium oxide source via sol-gel process Cover

Bio-dielectric based on superconductors yttrium calcium barium copper oxide (YCaBa2Cu3O7−x) from eggshell as calcium oxide source via sol-gel process

Open Access
|Dec 2021

References

  1. Tangboriboon N, Khongnakhon T, Kittikul S, Kunanuraksapong R, Sirivat A. An innovative CaSiO3 dielectric material from eggshells by sol–gel process. J Sol-Gel Sci Technol. 2011;58:33–41.
  2. Parande G, Manakari V, Dev Sharma Kopparthy S, Gupta M. A study on the effect of low-cost eggshell reinforcement on the immersion, damping and mechanical properties of magnesium–zinc alloy. Compos B Eng. 2020;182:107650.
  3. Tangboriboon N, Suttiprapar J, Changkhamchom S, Sirivat A. Alternative green preparation of meso-porous calcium hydroxyapatite by chemical reaction of eggshell and phophoric acid. Int J Appl Ceram Technol. 2019;16(5):1989–97.
  4. Oladele IO, Agbabiaka OG, Adediran AA, Akinwekomi AD, Balogun AO. Structural performance of poultry eggshell derived hydroxyapatite based high density polyethylene bio-composites. Heliyon. 2019;5:e 02552.
  5. Boronat T, Fombuena V, Garcia-Sanoguera D, Sanchez-Nacher L, Balart R. Development of a biocomposite based on green polyethylene biopolymer and eggshell. Mater Des. 2015;68:177–185.
  6. Tangboriboon N, Kunanuruksapong R, Sirivat A, Kunanuruksapong R, Sirivat A. Preparation and properties of calcium oxide from eggshells via calcination. Mater Sci Pol. 2012;30(4):313–22.
  7. Waheed M, Butt MS, Shehzad A, Adzahan NM, Shabbir MA, Suleria HAR, et al. Eggshell calcium: A cheap alternative to expensive supplements. Trends Food Sci Technol. 2019;91:219–30.
  8. Huang X, Dong K, Liu L, Luo X, Yang R, Song H, et al. Physicochemical and structural characteristics of nano eggshell calcium prepared by wet ball milling. LWT-Food Sci Technol. 2020;131:109721.
  9. Ehrenfeld JR. Eco-efficiency: Philosophy, theory and tools. J Ind Ecol. 2005;9(4):6–8.
  10. Basuki B. Eco-efficiency and sustainable development as efforts to produce environmentally friendly product: An exploratory case study. Soc Environ Account J. 2015;9(3):199–218.
  11. Cappuyns V. European Environment Agency (EEA), Making sustainability accountable: Eco-efficiency, resource productivity and innovation, Proceedings of a workshop on the occasion of the Fifth Anniversary of the European Environment Agency (EEA), Denmark, 39 p; 1998.
  12. Mohan R, Singh K, Kaur NJ, Bhattacharya S, Dixit M, Gaur NK, et al. Calcium and oxygen doping in YBa2Cu3Oy. Solid State Commun. 2007;141:605–9.
  13. Yao X, Huang DX, Nomura K, Nakamura Y, Izumi T, Shiohara Y. Superconducting properties of Ca-doped YBCO thick film by liquid phase epitaxy. Physica C. 2002;378–381:107–11.
  14. Jasim SE, Jusoh MA, Hafiz M, Jose R. Fabrication of superconducting YBCO nanoparticles by electrospinning. Procedia Eng. 2016;148:243–8.
  15. Hammerl G, Schmehl A, Schulz RR, Goetz B, Bielefeldt H, Schneider CW, et al. Enhanced supercurrent density in polycrystalline YBa2Cu3O7−δ at 77 K from calcium doping of grain boundaries. J Mannhart Nat. 2000;407:162–4.
  16. Haider MJ, Jasim KA. Effect of Composition and Dielectric Properties for (YBCO) superconductor compound in different preparation methods. J Pure Appl Sci. 2020;33(1):17–30.
  17. Ayaş AO, Ekieibil A, Çetin SK, Coşkun A, Osman Er, A, Ufuktepe Y. The structural, superconducting and transport properties of the compounds Y3Ba5Cu8O18 and Y3Ba5Ca2Cu8O18. J Supercond Nov Magn. 2011;24:2243–52.
  18. Amoudeh Z, Jalali T, Osfouri S. Fabrication and characterization of YCa2Cu3O7 superconductors using natural (CaCO3) nanoparticles extracted from Sepia osfouri. Appl Phys A. 2020;126:1–7.
  19. Harabor A, Rotaru P, Harabor NA, Nozar P, Rotaru A. Orthorhombic YBCO-123 ceramic oxide superconductor: Structural, resistive and thermal properties. Ceram Int. 2019;45:2899–907.
  20. Ochsenkühn-Petropulu M, Tarantilis P, Argyropulu R, Parissakis G. Optimization of the sintering process by DSC for the preparation of high-temperature superconductors. J Therm Anal. 1998;52:903–914.
  21. Thuy TT, Herman G, Lommens P, Driessche IV. Complexation behavior in aqueous EDTA sol-gel systems for the synthesis of YBa2Cu3O7−x high-temperature super-conductors. J Braz Chem Soc. 2012;23(7):1289–1297.
  22. Ozabaci M. Contrasting effects of metal oxide dopants on the superconductivity of YBa2Cu3O7−δ. J Mater Sci Mater Electron. 2019;30:20198–204.
  23. Hamadneh I, Alhayek H, Al-Mobydeen A, Jaber AA, Albuqain R, Alsotari S, et al. Green synthesis and characterization of yttrium oxide and barium carbonate nanoparticles using Azadirachta indica (the neem tree) fruit aqueous extract. Egypt J Chem. 2019;62(4):573–81.
DOI: https://doi.org/10.2478/msp-2021-0026 | Journal eISSN: 2083-134X | Journal ISSN: 2083-1331
Language: English
Page range: 305 - 318
Submitted on: Apr 23, 2021
|
Accepted on: Apr 23, 2021
|
Published on: Dec 30, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Wipawadee Toumvong, Pornnita Chitcharoentaweechoke, Nuchnapa Tangboriboon, published by Wroclaw University of Science and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.