Probing the defect-induced magnetocaloric effect on ferrite/graphene functional nanocomposites and their magnetic hyperthermia

dc.creatorPrabhakaran, Thandapani
dc.creatorUdayabhaskar, R.
dc.creatorSahlevani, Saeed Farhang
dc.creatorFreire, Rafael Melo
dc.creatorDenardin, Juliano Casagrande
dc.creatorBéron, Fanny
dc.creatorVaraprasad, Kokkarachedu
dc.creatorGracia Pinilla, Miguel Ángel
dc.creatorAraújo, Marcus Vinícius
dc.creatorBakuzis, Andris Figueiroa
dc.date.accessioned2023-11-21T15:14:13Z
dc.date.available2023-11-21T15:14:13Z
dc.date.issued2019
dc.description.abstractRecently, the development of an alternative magnetic refrigerant for the conventional fossil fuels attracts the researchers. We discussed the structural defect-induced magnetocaloric effect (MCE) in Ni0.3Zn0.7Fe2O4/graphene (NZF/G) nanocomposites for the first time. Single-phase spinel ferrite nanocomposites with an average size of 7–11.4 nm were achieved by using the microwave-assisted coprecipitation method. The effect of graphene loading on the structural and magnetism of NZF/G nanocomposites was elaborated. Raman analysis proved that the interface interaction between NZF and graphene yielded different densities of structural defects. In view of magnetism, superparamagnetic NZF nanoparticles showed a magnetic entropy change (−ΔSMmax) of −0.678 J·kg–1 K–1 at 135 K, whereas the NZF/G nanocomposites exhibited superior −ΔSMmax at cryogenic temperatures and the defect-induced MCE change was indeed similar to the ID/IG intensity ratio. The nanocomposites exhibited different magnetic orderings between 5 and 295 K, and it was varying for ID/IG, 1.83 > 1.68 > 1.57 as antiferromagnetic (AFM) > AFM/ferrimagnetic (FiM) > FiM, respectively. Till now, NZF/G nanocomposites showed an inverse MCE of 4.378 J·kg–1 K–1 at 35 K and a refrigerant capacity of 88 J·kg–1 for 40 kOe, which was greater than the ferrites reported so far. Finally, MCE and magnetic hyperthermia were correlated at ambient conditions. These results pave the way for ferrite/graphene nanocomposites for cooling applications.
dc.identifier.citationPRABHAKARAN, T. et al. Probing the defect-induced magnetocaloric effect on ferrite/graphene functional nanocomposites and their magnetic hyperthermia. Journal of Physical Chemistry C, Washington, v. 123, n. 42, p. 25844-25855, 2019. DOI: 10.1021/acs.jpcc.9b07076. Disponível em: https://pubs.acs.org/doi/10.1021/acs.jpcc.9b07076. Acesso em: 12 set. 2023.
dc.identifier.doi10.1021/acs.jpcc.9b07076
dc.identifier.issn1932-7447
dc.identifier.issne- 1932-7455
dc.identifier.urihttps://pubs.acs.org/doi/10.1021/acs.jpcc.9b07076
dc.language.isoeng
dc.publisher.countryEstados unidos
dc.publisher.departmentInstituto de Física - IF (RMG)
dc.rightsAcesso Restrito
dc.titleProbing the defect-induced magnetocaloric effect on ferrite/graphene functional nanocomposites and their magnetic hyperthermia
dc.typeArtigo

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