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Effect of strains on the optical and magnetic properties of Ce-doped ZnO with O or Zn vacancies

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Abstract

The magnetic and optical properties of Ce-doped ZnO systems have been widely studied; the effects of different strains on Ce-doped ZnO systems with O or Zn vacancies remain unclear. This study identified the effects of biaxial strain on the magnetic and optical properties of Ce-doped ZnO systems with O or Zn vacancies through a generalized gradient approximation + U method. Zn15CeO15 showed the best stability among Ce-doped ZnO systems with O vacancies when the distance between Ce atoms and O vacancies was 0.3801 nm. Zn14CeO16 showed the best stability among Ce-doped ZnO systems with Zn vacancies when the distance between Ce atoms and Zn vacancies was 0.3249 nm. The formation energy of Zn15CeO15 and Zn14CeO16 first increased and then decreased with increasing compressive strain, whereas that of Zn15CeO15 and Zn14CeO16 decreased with increasing tensile strain. The band gap of Zn15CeO16 and Zn14CeO16 widened and the absorption spectra blueshifted with increasing compressive strain. These findings will help with the design and preparation of new ZnO-based short-wavelength light-emitting diodes. The band gap of Zn15CeO16 and Zn14CeO16 narrowed and the absorption spectra redshifted with increasing tensile strain. These findings help with the design and preparation of novel ZnO-based photocatalysts. Zn15CeO16 and Zn14CeO16 showed room-temperature ferromagnetism in the absence of strain. The magnetic moments and Curie temperature of Zn15CeO16 and Zn14CeO16 decreased with increasing compressive and tensile strains. The Zn15CeO16 system was antiferromagnetic under − 5% compressive strain, whereas Zn14CeO16 system was antiferromagnetic under − 4% and − 5% compressive strain, and 4% and 5% tensile strain. The magnetic moment, Curie temperature, and ferromagnetism–antiferromagnetism of Zn15CeO16 and Zn14CeO16 can be controlled by strain. These results can serve as a reference for the design and preparation of Ce-doped ZnO magnetic materials and magnetic switches.

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References

  1. Rai RC (2013) Analysis of the Urbach tails in absorption spectra of undoped ZnO thin films. J Appl Phys 113:383–386

    Article  Google Scholar 

  2. Lupan O, Pauporté T, Viana B, Aschehoug P, Ahmadi M, Cuenya BR, Rudzevich Y, Lin Y, Chow L (2013) Eu-doped ZnO nanowire arrays grown by electrodeposition. Appl Surf Sci 282:782–788

    Article  CAS  Google Scholar 

  3. Zhang YG, Zhang GB, Wang YX (2011) First-principles study of the electronic structure and optical properties of Ce-doped ZnO. J Appl Phys 109:063510

    Article  Google Scholar 

  4. Wang D, Chen Q, Xing G, Xing G, Yi J, Bakaul SR, Ding J, Wang J, Wu T (2012) Robust room-temperature ferromagnetism with giant anisotropy in Nd-doped ZnO nanowire arrays. Nano Lett 12:3994–4000

    Article  CAS  Google Scholar 

  5. Yayapao O, Thongtem T, Phuruangrat A, Thongtem S (2013) Sonochemical synthesis of Dy-doped ZnO nanostructures and their photocatalytic properties. J Alloys Compd 576:72–79

    Article  CAS  Google Scholar 

  6. Mezdrogina MM, Vinogradov AY, Eremenko MV (2016) Intensity of visible and IR emission of intracenter 4 f, transitions of RE ions in Er- and Tm-doped ZnO films with additional Ag, Li, and N impurities. Opt Spectrosc 121:220–228

    Article  CAS  Google Scholar 

  7. Ahmed MAM, Meyer WE, Nel JM (2019) Structural, optical and electrical properties of the fabricated Schottky diodes based on ZnO, Ce and Sm doped ZnO films prepared via wet chemical technique. Mater Res Bull 115:12–18

    Article  CAS  Google Scholar 

  8. Parangusan H, Ponnamma D, Al-Maadeed MAA (2019) Effect of cerium doping on the optical and photocatalytic properties of ZnO nanoflowers. Bull Mater Sci 42:179–190

    Article  Google Scholar 

  9. Bechambi O, Jlaiel L, Najjar W, Sayadi S (2016) Photocatalytic degradation of bisphenol A in the presence of Ce–ZnO: evolution of kinetics, toxicity and photodegradation mechanism. Mater Chem Phys 173:95–105

    Article  CAS  Google Scholar 

  10. Iqbal J, Liu X, Zhu H, Pan C, Zhang Y, Yu D, Yu R (2009) Trapping of Ce electrons in band gap and room temperature ferromagnetism of Ce4+ doped ZnO nanowires. J Appl Phys 106:083515

    Article  Google Scholar 

  11. Sharma DK, Sharma KK, Kumxar V, Sharma A (2016) Effect of Ce doping on the structural, optical and magnetic properties of ZnO nanoparticles. J Mater Sci-Mater Electron 27:10330–10335

    Article  CAS  Google Scholar 

  12. Wen J, Zhang J, Qiu Z, Yang X, Li Z (2018) The investigation of Ce doped ZnO crystal: the electronic, optical and magnetic properties. Phys B: Condens Matter 534:44–50

    Article  CAS  Google Scholar 

  13. Tan C, Xu D, Zhang K, Tian X, Cai W (2015) Electronic and magnetic properties of rare-earth metals doped ZnO monolayer. J Nanomater 2015:1–8

    Google Scholar 

  14. Qiao L, Chai C, Yang Y (2015) First-principles theoretical study on band of strained wurtzite Nb-doped ZnO. J Wuhan Univ Technol-Mater Sci Ed 30:467–472

    Article  CAS  Google Scholar 

  15. Huo Y, Lin H, Chen R, Makarova M, Rong Y, Li M (2011) Strong enhancement of direct transition photoluminescence with highly tensile-strained Ge grown by molecular beam epitaxy. Appl Phys Lett 98:011111

    Article  Google Scholar 

  16. Qi M, Dai S, Wu P (2019) Tuning electronic structure and magnetic properties of Mn- and Fe-doped arsenene with biaxial strain. J Phys: Condens Matter 32:085802

    Google Scholar 

  17. Peng C, Wang Y, Cheng Z (2015) Tuning magnetism by biaxial strain in native ZnO. Phys Chem Chem Phys 17:16536–16544

    Article  CAS  Google Scholar 

  18. Miao MS, Lambrecht WRL (2005) Effects of biaxial strain on stability and half-metallicity of Cr and Mn pnictides and chalcogenides in the zinc-blende structure. Phys Rev B 72:064409

    Article  Google Scholar 

  19. Zhao YJ, Zunger A (2005) Zinc-blende half-metallic ferromagnets are rarely stabilized by coherent epitaxy. Phys Rev B 71:132403

    Article  Google Scholar 

  20. Huang D, Zhao YJ, Chen LJ, Chen DH, Shao YZ (2008) Structural instability of epitaxial zinc-blende vanadium pnictides and chalcogenides for half-metallic ferromagnets. J Appl Phys 104:053709

    Article  Google Scholar 

  21. Mariappan R, Ponnuswamy V, Suresh P, Suresh R, Ragavendar M, Bose AC (2014) Nanostructured CexZn1−xO thin films: influence of Ce doping on the structural, optical and electrical properties. J Alloys Compd 588:170–176

    Article  CAS  Google Scholar 

  22. Ma X, Wu Y, Lv Y, Zhu Y (2013) Correlation effects on lattice relaxation and electronic structure of ZnO within the GGA + U formalism. J Phys Chem C 117:26029–26039

    Article  CAS  Google Scholar 

  23. Ackland GJ, Warren MC, Clark SJ (1997) Practical methods in ab initio lattice dynamics. J. Phys: Condens Matter 9:7861–7872

    CAS  Google Scholar 

  24. Zhang X, Dong T, Ma H, Li D, Ying C, Liu C, Wang F (2020) A first principles investigation on the influence of transition-metal elements on the structural, mechanical, and anisotropic properties of CaM2Al20 intermetallics. J Mol Graph Model 96:107509

    Article  CAS  Google Scholar 

  25. Wu Z, Cohen RE (2006) A more accurate generalized gradient approximation for solids. Phys Rev B 73:235116

    Article  Google Scholar 

  26. Saravanakumar B, Mohan R, Thiyagarajan K, Kim SJ (2013) Investigation of UV photoresponse property of Al, N co-doped ZnO film. J Alloy Compd 580:538–543

    Article  CAS  Google Scholar 

  27. Shukla SK, Agorku ES, Mittal H, Mishra AK (2014) Synthesis, characterization and photoluminescence properties of Ce3+ -doped ZnO-nanophosphors. Chem Pap 68:217–222

    Article  CAS  Google Scholar 

  28. Bechambi O, Touati A, Sayadi S, Najjar W (2015) Effect of cerium doping on the textural, structural and optical properties of zinc oxide: role of cerium and hydrogen peroxide to enhance the photocatalytic degradation of endocrine disrupting compounds. Mater Sci Semicond Process 39:807–816

    Article  CAS  Google Scholar 

  29. Li M, Zhang J, Zhang Y (2012) First-principles calculation of compensated (2N, W) codoping impacts on band gap engineering in anatase TiO2. Chem Phys Lett 527:63–66

    Article  CAS  Google Scholar 

  30. Obeid MM, Jappor HR, Al-Marzoki K, Ali Al-Hydary I, Edrees SJ, Shukur MM (2019) Unraveling the effect of Gd doping on the structural, optical, and magnetic properties of ZnO based diluted magnetic semiconductor nanorods. RSC Adv 9:33207–33221

    Article  CAS  Google Scholar 

  31. Obeid MM, Jappor HR, Edrees SJ, Shukur MM, Khenata R, Mogulkoc Y (2019) The electronic, half-metallic, and magnetic properties of Ca1−xCrxS ternary alloys: insights from the first-principle calculations. J Mol Graph Model 89:22–32

    Article  CAS  Google Scholar 

  32. Obeid MM, Jappor HR, Al-Marzoki K, Hoat DM, Vu TV, Edrees SJ, Yaseen ZM, Shukur MM (2019) Electronic and magnetic properties of single-layer boron phosphide associated with materials processing defects. Comput Mater Sci 170:109201

    Article  CAS  Google Scholar 

  33. Hou Q, Zhao C, Guo S, Mao F, Zhang Y (2015) Effect on electron structure and magneto-optic property of heavy W-doped anatase TiO2. PLoS ONE 10:e0122620

    Article  Google Scholar 

  34. Wang J, Fang T, Zhang L, Feng J, Li Z, Zou Z (2014) Effects of oxygen doping on optical band gap and band edge positions of Ta3N5 photocatalyst: a GGA + U calculation. J Catal 309:291–299

    Article  CAS  Google Scholar 

  35. Jain SC, McGregor JM, Roulston DJ (1990) Band-gap narrowing in novel III–V semiconductors. J Appl Phys 68:3747–3749

    Article  CAS  Google Scholar 

  36. Zener C (1951) Interaction between the d-shells in the transition metals. II. Ferromagnetic compounds of manganese with perovskite structure. Phys Rev 82:403–405

    Article  CAS  Google Scholar 

  37. Sato K, Dederichs PH, Katayama YH (2003) Curie temperatures of III–V diluted magnetic semiconductors calculated from first principles. Europhys Lett 61:403–408

    Article  CAS  Google Scholar 

  38. Sato K, Bergqvist L, Kudrnovský J, Dederichs PH, Eriksson O, Turek I, Sanyal B, Bouzerar G, Katayama-Yoshida H, Dinh VA, Fukushima T, Kizaki H, Zeller R (2010) First-principles theory of dilute magnetic semiconductors. Rev Mod Phys 82:1633–1690

    Article  CAS  Google Scholar 

  39. Theivarasu C, Indumathi T (2017) Effect of rare earth metal ion Ce3+, on the structural, optical and magnetic properties of ZnO nanoparticles synthesized by the co-precipitation method. J Mater Sci-Mater Electron 28:3664–3671

    Article  CAS  Google Scholar 

Download references

Funding

This study was funded by the National Natural Science Foundation of China (Grant Nos. 61664007, 61964013), the Science and Technology Major Project of Inner Mongolia Autonomous Region (2018-810).

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Correspondence to Qingyu Hou or Feng Guo.

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Xu, Z., Hou, Q., Guo, F. et al. Effect of strains on the optical and magnetic properties of Ce-doped ZnO with O or Zn vacancies. J Mater Sci 55, 7390–7402 (2020). https://doi.org/10.1007/s10853-020-04551-4

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  • DOI: https://doi.org/10.1007/s10853-020-04551-4

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