Influence of the sputtering flow regime on the structural properties and magnetic behavior of Fe-Ga thin films (Ga ∼ 30 at.%)
dc.contributor.author | Muñoz Noval, Álvaro | |
dc.contributor.author | Ordóñez Fontes, A. | |
dc.contributor.author | Ranchal Sánchez, Rocío | |
dc.date.accessioned | 2023-06-18T06:55:20Z | |
dc.date.available | 2023-06-18T06:55:20Z | |
dc.date.issued | 2016-06-07 | |
dc.description | ©2016 American Physical Society. This paper has been financially supported through of the Spanish Ministry of Economy and Competitiveness (MINECO), MAT2015-66888-C3-3-R. We thank “CAI Difracción de rayos-X” of Universidad Complutense de Madrid for the x-ray diffractometry measurements and Instituto de Sistemas Optoelectrónicos y Microtecnología (ISOM) for the use of some of its facilities. We also thank BM25-SpLine, the Spanish CRG at ESRF for providing beam time. | |
dc.description.abstract | In this paper we analyze the structure of Fe-Ga layers with a Ga content of ∼30 at.% deposited by the sputtering technique under two different regimes. We also studied the correlation between the structure and magnetic behavior of the samples. Keeping the Ar pressure fixed, we modified the flow regime from ballistic to diffusive by increasing the distance between the target and the substrate. X-ray diffraction measurements have shown a lower structural quality when growing in the diffusive flow. We investigated the impact of the growth regime by means of x-ray absorption fine structure (XAFS) measurements and obtained signs of its influence on the local atomic order. Full multiple scattering and finite difference calculations based on XAFS measurements point to a more relevant presence of a disordered A2 phase and of orthorhombic Ga clusters on the Fe-Ga alloy deposited under a diffusive regime; however, in the ballistic sample, a higher presence of D0_3/B2 phases is evidenced. Structural characteristics, from local to long range, seem to determine the magnetic behavior of the layers. Whereas a clear in-plane magnetic anisotropy is observed in the film deposited under ballistic flow, the diffusive sample is magnetically isotropic. Therefore, our experimental results provide evidence of a correlation between flow regime and structural properties and its impact on the magnetic behavior of a rather unexplored compositional region of Fe-Ga compounds. | |
dc.description.department | Depto. de Física de Materiales | |
dc.description.faculty | Fac. de Ciencias Físicas | |
dc.description.refereed | TRUE | |
dc.description.sponsorship | Ministerio de Economía y Competitividad (MINECO) | |
dc.description.status | pub | |
dc.eprint.id | https://eprints.ucm.es/id/eprint/38922 | |
dc.identifier.doi | 10.1103/PhysRevB.93.214408 | |
dc.identifier.issn | 2469-9950 | |
dc.identifier.officialurl | http://dx.doi.org/10.1103/PhysRevB.93.214408 | |
dc.identifier.relatedurl | http://journals.aps.org/ | |
dc.identifier.uri | https://hdl.handle.net/20.500.14352/24588 | |
dc.issue.number | 21 | |
dc.journal.title | Physical review B | |
dc.language.iso | eng | |
dc.page.final | 214408_8 | |
dc.page.initial | 214408_1 | |
dc.publisher | American Physical Society | |
dc.relation.projectID | MAT2015-66888-C3-3-R | |
dc.rights.accessRights | open access | |
dc.subject.cdu | 538.9 | |
dc.subject.keyword | Alloys | |
dc.subject.keyword | Magnetostriction | |
dc.subject.keyword | Growth | |
dc.subject.keyword | Atoms | |
dc.subject.ucm | Física de materiales | |
dc.title | Influence of the sputtering flow regime on the structural properties and magnetic behavior of Fe-Ga thin films (Ga ∼ 30 at.%) | |
dc.type | journal article | |
dc.volume.number | 93 | |
dcterms.references | 1. A. E. Clark, J. B. Restorff, M. Wun-Fogle, T. A. Lograsso, and D. L. Schlagel, IEEE Trans. Magn. 36, 3238 (2000). 2. A. E. Clark, M. Wun-fogle, T. A. Lograsso, and J. R. Cullen, IEEE Trans. Magn. 37, 2678 (2001). 3. M. Laver, C. Mudivarthi, J. R. Cullen, A. B. Flatau, W.-C. Chen, S. M. Watson, and M. Wuttig, Phys. Rev. Lett. 105, 027202 (2010). 4. M. P. Ruffoni, S. Pascarelli, R. Grossinger, R. S. Turtelli, C. Bormio-Nunes, and R. F. Pettifer, Phys. Rev. Lett. 101, 147202 (2008). 5. H. Cao, P. M. Gehring, C. P. Devreugd, J. A. Rodriguez-Rivera, J. Li, and D. Viehland, Phys. Rev. Lett. 102, 127201 (2009). 6. E. Arenholz, G. van der Laan, A. McClure, and Y. Idzerda, Phys. Rev. B 82, 180405 (2010). 7. O. Ikeda, R. Kainuma, I. Ohnuma, K. Fukamichi, and K. Ishida, J. Alloys Compnd. 347, 198 (2002). 8. Q. Xing, Y. Du, R. J. McQueeney, and T. A. Lograsso, Acta Materialia 56, 4536 (2008). 9. H. Cao, F. Bai, J. Li, D. Viehland, T. A. Lograsso, and P. M. Gehring, J. Alloys Compnd. 465, 244 (2008). 10. J. Cullen, P. Zhao, and M. Wuttig, J. Appl. Phys. 101, 123922 (2007). 11. R. A. Dunlap, N. C. Deschamps, R. E. Mar, and S. P. Farrell, J. Phys.: Condens. Matter 18, 4907 (2006). 12. A. Butera, J. Gómez, J. L. Weston, and J. A. Barnard, J. Appl. Phys. 98, 033901 (2005). 13. R. R. Basantkumar, B. J. Hills Stadler, W. P. Robbins, and E. M. Summers, IEEE Trans. Magn. 42, 3102 (2006). 14. J. L. Weston, A. Butera, T. Lograsso, M. Shamsuzzoha, I. Zana, G. Zangari, and J. Barnard, IEEE Trans. Magn. 38, 2832 (2002). 15. B. Adolphi, J. McCord, M. Bertram, C.-G. Oertel, U. Merkel, U. Marschner, R. Schäfer, C. Wenzel, and W.-J. Fischer, Smart Mater. Struct. 19, 055013 (2010). 16. B. W. Wang, S. Y. Li, Y. Zhou, W. M. Huang, and S. Y. Cao, J. Magn. Magn. Mater. 320, 769 (2008). 17. Y. Zhang, Q. Zhan, Z. Zuo, H. Yang, X. Zhang, G. Dai, Y. Liu, Y. Yu, J. Wang, B. Wang, and R. W. Li, Phys. Rev. B 91, 174411 (2015). 18. R. Álvarez, J. M. García-Martín, M. C. Lopez-Santos, V. Rico, F. J. Ferrer, J. Cotrino, A. R. González-Elipe, and A. Palmero, Plasma Process. Polym. 11, 571 (2014). 19. R. E. Somekh, J. Vac. Sci. Technol. A 2, 1285 (1984). 20. G. M. Turner, I. S. Falconer, B. W. James, and D. R. McKenzie, J. Vac. Sci. Technol. A 10, 455 (1992). 21. C. V. R. Vasant Kumar and A. Mansingh, J. Appl. Phys. 65, 1270 (1989). 22. B. Ravel and M. Newville, J. Synchrotron Rad. 12, 537 (2005). 23. A. L. Ankudinov, B. Ravel, J. J. Rehr, and S. D. Conradson, Phys. Rev. B 58, 7565 (1998). 24. Y. Joly, Phys. Rev. B 63, 125120 (2001). 25. R. W. G. Wyckoff, in Crystal Structures, 2nd ed. (Interscience Publishers, New York, 1963), Vol. 1, pp. 7–83. 26. M. Alain, M. Jacques, M.-B. Diane, and P. Karine, J. Phys.: Conf. Ser. 190, 012034 (2009). 27. C. H. Shon and J. K. Lee, Appl. Surface Science 192, 258 (2008). 28. Donald H. Buckley, Surface Effects in Adhesion, Friction, Wear, and Lubrication (Elsevier, Amsterdam, 1981). 29. J. M. Borrego, J. S. Blázquez, C. F. Conde, A. Conde, and S. Roth, Intermetallics 15, 193 (2007). 30. S. Pascarelli, M. P. Ruffoni, R. Sato Turtelli, F. Kubel, and R. Grössinger, Phys. Rev. B 77, 184406 (2008). 31. F. Farges, G. E. Brown, and J. J. Rehr, Phys Rev B 56, 1809 (1997). 32. R. Ranchal and D. Maestre, J. Phys. D: Appl. Phys. 47, 355004 (2014). 33. S. Tacchi, S. Fin, G. Carlotti, G. Gubbiotti, M. Madami, M. Barturen, M. Marangolo, M. Eddrief, D. Bisero, A. Rettori, and M. G. Pini, Phys. Rev. B 89, 024411 (2014). 34. S. Fin, R. Tomasello, D. Bisero, M. Marangolo, M. Sacchi, H. Popescu, M. Eddrief, C. Hepburn, G. Finocchio, M. Carpentieri, A. Rettori, M. G. Pini, and S. Tacchi, Phys. Rev. B 92, 224411 (2015). 35. M. Barturen, B. Rache Salles, P. Schio, J. Milano, A. Butera, S. Bustingorry, C. Ramos, A. J. A de Oliveira, M. Eddrief, E. Lacaze, F. Gendron, V. H. Etgens, and M. Marangolo, Appl. Phys. Lett. 101, 092404 (2012). 36. M. Maicas, R. Ranchal, C. Aroca, P. Sánchez, and E. López, Eur. Phys. J. B 62, 267 (2008). 37. K. Hara, T. Hashimoto, and E. Tatsumoto, J. Phys. Soc. Jpn. 28, 254 (1970). 38. R. E. Jones, J. Williams, L. Spector, C.-J. Lin, S. Wang, S. Pichai, and B. M. Clemens, IEEE Trans. Magn. 31, 3817 (1995). 39. J. Atulasimha, A. B. Flatau, and J. R. Cullen, Smart Mater. 17, 025027 (2008). | |
dspace.entity.type | Publication | |
relation.isAuthorOfPublication | 990020c1-6950-4063-a847-38e80cb18961 | |
relation.isAuthorOfPublication | eca2c0e4-9357-4a13-a15b-35493ec315af | |
relation.isAuthorOfPublication.latestForDiscovery | 990020c1-6950-4063-a847-38e80cb18961 |
Download
Original bundle
1 - 1 of 1