Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/8863
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dc.contributor.authorBhattacharyya, Gargeeen_US
dc.contributor.authorGarg, Priyankaen_US
dc.contributor.authorBhauriyal, Preetien_US
dc.contributor.authorPathak, Biswarupen_US
dc.date.accessioned2022-03-17T01:00:00Z-
dc.date.accessioned2022-03-21T11:30:04Z-
dc.date.available2022-03-17T01:00:00Z-
dc.date.available2022-03-21T11:30:04Z-
dc.date.issued2019-
dc.identifier.citationBhattacharyya, G., Garg, P., Bhauriyal, P., & Pathak, B. (2019). Density functional theory study of defect induced ferromagnetism and half-metallicity in CaI2 based monolayer for spintronics applications. ACS Applied Nano Materials, 2(10), 6152-6161. doi:10.1021/acsanm.9b00967en_US
dc.identifier.issn2574-0970-
dc.identifier.otherEID(2-s2.0-85074675465)-
dc.identifier.urihttps://doi.org/10.1021/acsanm.9b00967-
dc.identifier.urihttps://dspace.iiti.ac.in/handle/123456789/8863-
dc.description.abstractWith the rapid advancement of electronics and spintronics industries, the demand for highly efficient materials has been increased for the application of high speed devices and circuits. In the recent past, Ca-based systems have been studied for superconducting properties. Using first-principles density functional theoretical calculations, we have investigated another Ca-based system (CaI2) for its half-metallic properties, which can be promising for ultrafast nonscattering transport. In the domain of spintronics, main group based half-metallic materials have attracted much attention due to their long spin-relaxation time. Here, in this study, we report for the first time ferromagnetism and half-metallicity in calcium iodide (CaI2) based materials with a wide spin-up gap of ∼3.84 eV. Such high spin-up gap in Ca-based half-metallic material is very promising since it can provide nonscattering transport. Among all, Ca0.67δ0.33I2 has a similar pattern to the most well established and thinnest magnet, CrI3 monolayer. Our further investigation predicts that the Ca0.89δ0.11I2 system has a ferromagnetic ground state with Curie temperature of ∼238 K (XY model), which is considerably higher than the reported CrI3 monolayer (45 K). Further to this, such system has a high magnetic anisotropy energy (∼14.11 meV), which indicates that it can prohibit spin fluctuation. Therefore, we report here that alkaline earth metal halide based magnetic materials can be promising for next generation spintronics devices. © 2019 American Chemical Society.en_US
dc.language.isoenen_US
dc.publisherAmerican Chemical Societyen_US
dc.sourceACS Applied Nano Materialsen_US
dc.subjectAstrophysicsen_US
dc.subjectCalcium compoundsen_US
dc.subjectCalculationsen_US
dc.subjectChromium compoundsen_US
dc.subjectDensity functional theoryen_US
dc.subjectFerromagnetismen_US
dc.subjectGround stateen_US
dc.subjectMagnetic anisotropyen_US
dc.subjectMagnetic materialsen_US
dc.subjectMetal halidesen_US
dc.subjectMetalsen_US
dc.subjectMonolayersen_US
dc.subjectSpin fluctuationsen_US
dc.subjectSpintronicsen_US
dc.subjectDensity functional theory studiesen_US
dc.subjectFerromagnetic ground stateen_US
dc.subjectHalf-metallic propertiesen_US
dc.subjectHalf-metallicityen_US
dc.subjectHigh magnetic anisotropyen_US
dc.subjectMagnetic anisotropy energyen_US
dc.subjectSuperconducting propertiesen_US
dc.subjectTheoretical calculationsen_US
dc.subjectIodine compoundsen_US
dc.titleDensity Functional Theory Study of Defect Induced Ferromagnetism and Half-Metallicity in CaI2 Based Monolayer for Spintronics Applicationsen_US
dc.typeJournal Articleen_US
Appears in Collections:Department of Chemistry

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