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Heterometallic 3d-4f single molecule magnets containing diamagnetic metal ions

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dc.contributor.author CHAKRABORTY, A
dc.contributor.author GOURA, J
dc.contributor.author KALITA, P
dc.contributor.author SWAIN, A
dc.contributor.author RAJARAMAN, G
dc.contributor.author CHANDRASEKHAR, V
dc.date.accessioned 2018-12-03T13:20:34Z
dc.date.available 2018-12-03T13:20:34Z
dc.date.issued 2018
dc.identifier.citation DALTON TRANSACTIONS,47(27)8841-8864 en_US
dc.identifier.issn 1477-9226;1477-9234
dc.identifier.uri http://dx.doi.org/10.1002/2014GL061531
dc.identifier.uri http://dspace.library.iitb.ac.in/xmlui/handle/100/25186
dc.description.abstract Molecular nano magnets such as single-molecule magnets (SMMs) are a class of coordination complexes with numerous potential applications such as information storage devices, Q-bits in quantum computing and spintronics materials. One of the greatest challenges in taking these molecules to end-user applications lies in devising strategies to control and predict their magnetic properties. In this regard, lanthanide-based compounds are very attractive as they possess appealing magnetic properties such as very high barriers for magnetization reversal, very large blocking temperatures etc. Controlling the microscopic energy levels of lanthanide-based single-ion magnets (SIMs) is a challenging task and to obtain molecules having very large blocking temperatures, it is desirable to enhance the ground state-excited state gap between the m(J) levels and also to quench the quantum tunnelling of magnetization that often circumvents the barrier height. One of the strategies that has been developed by us and others in this area is to employ a diamagnetic transition metal ion to achieve this goal. Over the years several diamagnetic ions such as Zn-II, Ni-II (square planar), Al-III and Co-III have been successfully employed to obtain lanthanide-based SMMs with interesting properties. In this perspective, we discuss how incorporation of diamagnetic ion(s) in the cluster aggregation enhances the barrier height for magnetization reversal and hence improves the magnetic properties. We also discuss theoretical studies on such systems based on ab initio calculations performed using CASSCF level of theory. Such studies are helpful in affording an understanding of the role and limitation of the diamagnetic ions in enhancing the barrier height for magnetization reversal of molecular nanomagnets. en_US
dc.language.iso English en_US
dc.publisher ROYAL SOC CHEMISTRY en_US
dc.subject SCHIFF-BASE LIGANDS en_US
dc.subject QUANTUM PHASE INTERFERENCE en_US
dc.subject ENERGY BARRIER en_US
dc.subject DY-III en_US
dc.subject ANISOTROPY BARRIER en_US
dc.subject SLOW RELAXATION en_US
dc.subject SMM BEHAVIOR en_US
dc.subject ZERO-FIELD en_US
dc.subject GD-III en_US
dc.subject ZN-DY en_US
dc.title Heterometallic 3d-4f single molecule magnets containing diamagnetic metal ions en_US
dc.type Review en_US


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