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Coherence and organisation in lanthanoid complexes: from single ion magnets to spin qubits

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Coherence and organisation in lanthanoid complexes: from single ion magnets to spin qubits

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dc.contributor.author Gaita Ariño, Alejandro
dc.contributor.author Prima García, Helena
dc.contributor.author Cardona Serra, Salvador
dc.contributor.author Escalera Moreno, Luis
dc.contributor.author Rosaleny Peralvo, Lorena Estefanía
dc.contributor.author Baldoví, José J.
dc.date.accessioned 2021-05-07T07:08:24Z
dc.date.available 2021-05-08T04:45:05Z
dc.date.issued 2016 es_ES
dc.identifier.citation A. Gaita-Ariño, H. Prima-García, S. Cardona-Serra, L. Escalera-Moreno, L. E. Rosaleny, J.J. Baldoví Coherence and organisation in lanthanoid complexes: from single ion magnets to spin qubits Inorg. Chem. Front. 3, 568–577 (2016) es_ES
dc.identifier.uri https://hdl.handle.net/10550/79234
dc.description.abstract Molecular magnetism is reaching a degree of development that will allow for the rational design of sophisticated systems. Among these, here we will focus on those that display single-molecule magnetic behaviour, i.e. classical memories, and on magnetic molecules that can be used as molecular spin qubits, the irreducible components of any quantum technology. Compared with candidates developed from physics, a major advantage of molecular spin qubits stems from the power of chemistry for the tailored and inexpensive synthesis of new systems for their experimental study; in particular, the so-called lanthanoid-based single-ion magnets, which have for a long time been one of the hottest topics in molecular magnetism. They have the potential to be chemically designed, tuning both their single-molecule properties and their crystalline environment. This allows the study of the different quantum processes that cause the loss of quantum information, collectively known as decoherence. The study of quantum decoherence processes in the solid state is necessary to answer some fundamental questions and lay the foundations for next-generation quantum technologies. This perspective article reviews the state of the art research in this field and its currently open problems. en_US
dc.description.abstract Molecular magnetism is reaching a degree of development that will allow for the rational design of sophisticated systems. Among these, here we will focus on those that display single-molecule magnetic behaviour, i.e. classical memories, and on magnetic molecules that can be used as molecular spin qubits, the irreducible components of any quantum technology. Compared with candidates developed from physics, a major advantage of molecular spin qubits stems from the power of chemistry for the tailored and inexpensive synthesis of new systems for their experimental study; in particular, the so-called lanthanoid-based single-ion magnets, which have for a long time been one of the hottest topics in molecular magnetism. They have the potential to be chemically designed, tuning both their single-molecule properties and their crystalline environment. This allows the study of the different quantum processes that cause the loss of quantum information, collectively known as decoherence. The study of quantum decoherence processes in the solid state is necessary to answer some fundamental questions and lay the foundations for next-generation quantum technologies. This perspective article reviews the state of the art research in this field and its currently open problems. es_ES
dc.language.iso en es_ES
dc.title Coherence and organisation in lanthanoid complexes: from single ion magnets to spin qubits es_ES
dc.type journal article es_ES
dc.subject.unesco UNESCO::QUÍMICA es_ES
dc.identifier.doi 10.1039/C5QI00296F es_ES
dc.identifier.idgrec 109580 es_ES
dc.accrualmethod - es_ES
dc.embargo.terms 0 days es_ES
dc.relation.projectID FP7-ERC-247384 es_ES
dc.relation.projectID ERC-2014-CoG/ 647301 es_ES
dc.relation.projectID MAT2014-56143-R es_ES
dc.relation.projectID CTQ2014-52758-P es_ES
dc.relation.projectID MDM-2015-0538 es_ES

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