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dc.contributor.authorCUGINI, F.-
dc.contributor.authorPORCARI, G.-
dc.contributor.authorVIAPPIANI, C.-
dc.contributor.authorCARON, L.-
dc.contributor.authorSANTOS, Adenilson Oliveira dos-
dc.contributor.authorCARDOSO, L. P.-
dc.contributor.authorPASSAMANI, E. C.-
dc.contributor.authorPROVETI, J. R. C.-
dc.contributor.authorGAMA, S.-
dc.contributor.authorBRÛCK, E.-
dc.contributor.authorSOLZI, M.-
dc.date.accessioned2018-03-15T19:34:27Z-
dc.date.available2018-03-15T19:34:27Z-
dc.date.issued2016-
dc.identifier.citationCUGINI, F. et al. Millisecond direct measurement of the magnetocaloric effect of a Fe2P-based compound by the mirage effect. Applied Physics Letters, v. 108, p. 2-4, 2016. DOI: http://dx.doi.org/10.1063/1.4939451pt_br
dc.identifier.issn1077-3118-
dc.identifier.issn0003-6951-
dc.identifier.urihttp://hdl.handle.net/123456789/867-
dc.description.abstractWe present direct measurements of the magnetocaloric effect on a Fe2P-based compound induced by a milliseconds pulsed magnetic field of 1 T to test their possible use in high frequency (up to 100 Hz) thermomagnetic cycles. The reported measurements were performed with an innovative and versatile non-contact set up based on the mirage effect. The adiabatic temperature change of a MnFeP0.45As0.55 sample is presented and compared with measurements performed varying the same magnetic field in a time interval of 1 s and 100 ms. These results demonstrate the absence of kinetic constraints in the first-order phase transition of this sample induced on the milliseconds time scale. The study of the materials’ response to millisecond magnetic field pulses represents a fundamental test for the development of more powerful and efficient magnetic refrigerators.pt_br
dc.description.sponsorshipFAPESP(03/12604-6), FAPES, and CNPqpt_br
dc.language.isoenpt_br
dc.publisherAmerican Institute of Physicspt_br
dc.titleMillisecond direct measurement of the magnetocaloric effect of a Fe2P-based compound by the mirage effectpt_br
dc.typeArticlept_br
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