Log in

Magnetoresistive properties of thin nanostructured manganite films grown by metalorganic chemical vapour deposition onto glass-ceramics substrates

  • Electronic materials
  • Published:
Journal of Materials Science Aims and scope Submit manuscript

Abstract

The results of fabrication of nanostructured La1−xSr x MnO3 films grown by pulsed injection metalorganic chemical vapour deposition technique onto special disordered glass-ceramics substrate are presented. Two groups of films were produced in order to determine what would be their main physical properties when certain fabrication changes were introduced: (1) films with thicknesses in the range of 25–900 nm, which were grown at a temperature of 750 °C; and (2) films having thicknesses of 400 nm, which were grown at different deposition temperatures ranging from 600 °C up to 775 °C in steps of 25 °C. It was determined that the morphology and microstructure of the films depends on the thicknesses of these films and their deposition temperatures. The thinnest films (25 nm) grew mainly in amorphous phase, while the thicker films had well-pronounced structure made of column-shaped crystallites. These had average column widths of 40–65 nm, were spread throughout the whole thickness of the films, and were separated by 5–10-nm-thick grain boundaries. The influence of growth conditions on the colossal magnetoresistance effect in these films was studied in pulsed magnetic fields of up to 20 T. The dependences of the magnetoresistance on the magnetic flux density were analysed using modified Mott’s hop** model. It was demonstrated that these nanostructured films behave as superparamagnetic materials with reduced magnetic properties due to disordered grain boundaries. The obtained results allow the tuning of the resistivity, magnetoresistance and the anisotropy of La1−xSr x MnO3 manganite films, which were deposited onto glass-ceramic substrates, and thus to use them for the fabrication of high pulsed magnetic field sensors.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Subscribe and save

Springer+ Basic
EUR 32.99 /Month
  • Get 10 units per month
  • Download Article/Chapter or Ebook
  • 1 Unit = 1 Article or 1 Chapter
  • Cancel anytime
Subscribe now

Buy Now

Price includes VAT (France)

Instant access to the full article PDF.

Figure 1
Figure 2
Figure 3
Figure 4
Figure 5
Figure 6
Figure 7
Figure 8
Figure 9

Similar content being viewed by others

References

  1. Israel C, Calderón MJ, Mathur ND (2007) The current spin on manganites. Mater Today 10:24–32

    Article  Google Scholar 

  2. Balevičius S, Žurauskienė N, Stankevič V, Keršulis S, Plaušinaitienė V, Abrutis A, Zherlitsyn S, Herrmannsdörfer T, Wosnitza J, Wolff-Fabris F (2012) Nanostructured thin manganite films in megagauss magnetic field. Appl Phys Lett 101:092407. https://doi.org/10.1063/1.4749820

    Article  Google Scholar 

  3. Huijben M, Koster G, Liao ZL, Rijnders G (2017) Interface-engineered oxygen octahedral coupling in manganite heterostructures. Appl Phys Rev 4:041103. https://doi.org/10.1063/1.4985770

    Article  Google Scholar 

  4. Lenz J, Edelstein AS (2006) Magnetic sensors and their applications. IEEE Sens J 6:631–649

    Article  Google Scholar 

  5. Jogschies L, Klaas D, Kruppe R, Rittinger J, Taptimthong P, Wienecke A, Rissing L, Wurz MC (2015) Recent developments of magnetoresistive sensors for industrial applications. Sensors 15:28665–28689

    Article  Google Scholar 

  6. Sensitec katalog (2015) Magnetic micro- and nanotechnology for robust sensor solutions. https://www.sensitec.com/fileadmin/sensitec/Service_and_Support/Downloads/Catalogue/Sensitec_Katalog2015_Web_LZen.pdf. Accessed 26 Jan 2018

  7. Sadovnikov AV, Grachev AA, Beginin EN, Sheshukova SE, Sharaevskii YuP, Nikitov SA (2017) Voltage-controlled spin-wave coupling in adjacent ferromagnetic-ferroelectric heterostructures. Phys Rev Applied 7:0140131–01401316

    Article  Google Scholar 

  8. Sadovnikov AV, Odintsov SA, Beginin EN, Sheshukova SE, Sharaevskii YuP, Nikitov SA (2017) Toward nonlinear magnonics: Intensity-dependent spin-wave switching in insulating side-coupled magnetic stripes. Phys Rev B 96:1444281–14442810

    Google Scholar 

  9. Sadovnikov AV, Beginin EN, Odincov SA, Sheshukova SE, Sharaevskii YuP, Stognij AI, Nikitov SA (2016) Frequency selective tunable spin wave channeling in the magnonic network. Appl Phys Lett 108:1724111–1724115

    Article  Google Scholar 

  10. Yole Développement (2017) Magnetic sensor market and technologies report from Yole Développement. http://www.yole.fr/Magnetic_Sensor_Market.aspx#.WmoQO3mLlaQ. Accessed 26 Jan 2018

  11. Kapil A, Sharma A (2015) Magnetic pulse welding: an efficient and environmentally friendly multi-material joining technique. J Clean Prod 100:35–58

    Article  Google Scholar 

  12. Haran TL, Hoffman RB, Lane SE (2013) Diagnostic capabilities for electromagnetic railguns. IEEE Trans Plasma Sci 41:1526–1532

    Article  Google Scholar 

  13. Balevicius S, Zurauskiene N, Stankevic V, Herrmannsdörfer T, Zherlitsyn S, Skourski Y, Wolff-Fabris F, Wosnitza J (2013) CMR-B-scalar sensor application for high magnetic field measurement in non-destructive pulsed magnets. IEEE Trans Magn 49:5480–5484

    Article  Google Scholar 

  14. Ziese M (2002) Extrinsic magnetotransport phenomena in ferromagnetic oxides. Rep Prog Phys 65:143–249

    Article  Google Scholar 

  15. Dörr K (2006) Ferromagnetic manganites: spin-polarized conduction versus competing interactions. J Phys D Appl Phys 39:R125–R150

    Article  Google Scholar 

  16. Tao J, Niebieskikwiat D, Jie Q, Schofield MA, Wu L, Li Q, Zhu Y (2011) Role of structurally and magnetically modified nanoclusters in colossal magnetoresistance. Proc Nat Acad Sci USA (PNAS) 108:20941–20946

    Article  Google Scholar 

  17. Stankevič T, Medišauskas L, Stankevič V, Balevičius S, Žurauskienė N, Liebfried O, Schneider M (2014) Pulsed magnetic field measurement system based on colossal magnetoresistance-B-scalar sensors for railgun investigation. Rev Sci Instrum 85:044704-1–044704-5

    Google Scholar 

  18. Schneider M, Liebfried O, Stankevic V, Balevicius S, Zurauskiene N (2009) Magnetic diffusion in railguns: measurements using CMR-based sensors. IEEE Trans Magn 45:430–435

    Article  Google Scholar 

  19. Liebfried O, Schneider M, Loeffler MJ, Balevičius S, Žurauskienė N, Stankevič V (2009) Measurement of the magnetic field distribution in railguns using CMR-B-scalar sensors. Acta Phys Pol A 115:1125–1127

    Article  Google Scholar 

  20. Liebfried O, Löffler M, Schneider M, Balevičius S, Stankevič V, Žurauskienė N, Abrutis A, Plaušinaitienė V (2009) B-scalar measurements by CMR-based sensors of highly inhomogeneous transient magnetic fields. IEEE Trans Magn 45:5301–5306

    Article  Google Scholar 

  21. Žurauskienė N, Keršulis S, Medišauskas L, Tolvaišienė S (2011) Investigation of magnetoresistance and its anisotropy of thin polycrystalline La0,83Sr0,17MnO3 films in high pulsed magnetic fields. Acta Phys Pol A 119:186–188

    Article  Google Scholar 

  22. Beall GH (2014) Milestones in glass–ceramics: a personal perspective. Int J Appl Glass Sci 5:93–103

    Article  Google Scholar 

  23. Emrich BR (1964) Technology of new devitrified ceramics—a literature review, AF Materials Laboratory, Research and Technology Division Air Force Systems Command Wright-Patterson Air Force Base, Ohio. Technical documentary report No. ML-TDR-64-203

  24. Haghiri-Gosnet A-M, Renard J-P (2003) CMR manganites: physics, thin films and devices. J Phys D Appl Phys 36:R127–R150

    Article  Google Scholar 

  25. Prellier W, Lecoeur Phand Mercey B (2001) Colossal magnetoresistive manganite thin films. J Phys Condens Matter 13:R915–R944

    Article  Google Scholar 

  26. Ezaami A, Nasser NO, Cheikhrouhou-Koubaa W, Koubaa M, Cheikhrouhou A, Hlil EK (2017) Physical properties of La0.7Ca0.2Sr0.1MnO3 manganite: a comparison between sol–gel and solid state process. J Mater Sci Mater Electron 28:3648–3658

    Article  Google Scholar 

  27. Datta S, Ghatak A, Ghosh B (2016) Manganite (La1−xA x MnO3; A = Sr, Ca) nanowires with adaptable stoichiometry grown by hydrothermal method: understanding of growth mechanism using spatially resolved techniques. J Mater Sci 51:9679–9695. https://doi.org/10.1007/s10853-016-0201-4

    Article  Google Scholar 

  28. Vertruyen B, Rulmont A, Cloots R, Fagnard JF, Ausloos M, Vandriessche I, Hoste S (2005) Low-field magnetoresistance in La0.7Ca0.3MnO3 manganite compounds prepared by the spray drying technique. J Mater Sci 40:117–122. https://doi.org/10.1007/s10853-005-5695-0

    Article  Google Scholar 

  29. Pierson HO (1992) Handbook of chemical vapor deposition, principles, technology and applications. Noyes Publications, Norwich

    Google Scholar 

  30. Nakamura T (2013) Isotopic study on metalorganic chemical vapor deposition of manganite films. Surf Coat Technol 230:213–218

    Article  Google Scholar 

  31. Felten F, Senateur JP, Weiss F, Madar R, Abrutis A (1995) Deposition of oxide layers by computer controlled “injection -LPCVD”. J Phys IV C5:1079–1086

    Google Scholar 

  32. Abrutis A, Plausinaitiene V, Kubilius V, Teiserskis A, Saltyte Z, Butkute R, Senateur JP (2002) Magnetoresistant La1−xSr x MnO3 films by pulsed injection metal organic chemical vapor deposition: effect of deposition conditions, substrate material and film thickness. Thin Solid Films 413:32–40

    Article  Google Scholar 

  33. Dubourdieu C, Audier M, Roussel H, Sénateur JP, Pierre J (2002) Crystallization and related magnetotransport properties of amorphous manganite films grown by metalorganic chemical vapor deposition. J Appl Phys 92:379–384

    Article  Google Scholar 

  34. Balevičius S, Stankevič V, Žurauskienė N, Šimkevičius Č, Liebfried O, Loeffler M, Schneider M, Abrutis A, Plaušinaitiene V (2009) thin film manganite-metal interconnection and “loop effect” studies in CMR-based high magnetic field sensors. Acta Phys Pol A 115:1133–1135

    Article  Google Scholar 

  35. Grainys A, Novickij J, Stankevič T, Stankevič V, Novickij V, Žurauskienė N (2015) Single pulse calibration of magnetic field sensors using mobile 43 kJ facility. Meas Sci Rev 15:244–247

    Article  Google Scholar 

  36. Zacharias M, Streitenberger P (2001) Crystallization in the limit of ultra thin layers—a new crystallization model. Mater Res Soc Symp Proc 638:F6.2.1–F6.2.6

    Google Scholar 

  37. Salamon MB (2001) The physics of manganites: structure and transport. Rev Mod Phys 73:583–628

    Article  Google Scholar 

  38. Evetts JE, Blamire MG, Mathur ND, Isaac SP, Teo BS, Cohen LF, Macmanus-Driscoll JL (1998) Defect-induced spin disorder and magnetoresistance in single-crystal and polycrystal rare-earth manganite thin films. Philos Trans R Soc Lond A 356:1593

    Article  Google Scholar 

  39. Wagner P, Gordon I, Trappeniers L, Vanacken J, Herlach F, Moshchalkov VV, Bruynseraede Y (1998) Spin dependent hop** and colossal negative magnetoresistance in epitaxial Nd0.52Sr0.48MnO3 films in fields up to 50 T. Phys Rev Lett 81:3980–3983

    Article  Google Scholar 

  40. Colino JM, De Andrés A (2005) Huge magnetoresistance in ultrathin La0.7Ca0.3MnO3 films: the role of superparamagnetic clusters and domain walls. Appl Phys Lett 87:142509-1–142509-3

    Article  Google Scholar 

  41. Mandal P, Choudhury P, Bärner K, Helmolt R, Jansen AGM (2002) Magnetotransport properties of La2/3Sr1/3MnO3 thin film. J Appl Phys 91:5940–5944

    Article  Google Scholar 

  42. Žurauskienė N, Balevičius S, Stankevič V, Keršulis S, Schneider M, Liebfried O, Plaušinaitienė V, Abrutis A (2011) B-scalar sensor using CMR effect in thin polycrystalline manganite films. IEEE Trans Plasma Sci 39:411–416

    Article  Google Scholar 

Download references

Acknowledgements

This work was partly supported by the Research Council of Lithuania under Grant MIP-095/2015. RN is grateful to the Research Council of Lithuania for partly supporting this work under Grant DOTSUT-235 for Project Nr. 01.2.2-LMT-K-718-01-0054.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to N. Zurauskiene.

Ethics declarations

Conflict of interest

The authors declare that they have no conflict of interest.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Zurauskiene, N., Balevicius, S., Stankevic, V. et al. Magnetoresistive properties of thin nanostructured manganite films grown by metalorganic chemical vapour deposition onto glass-ceramics substrates. J Mater Sci 53, 12996–13009 (2018). https://doi.org/10.1007/s10853-018-2567-y

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10853-018-2567-y

Keywords

Navigation