Quantum Tunneling of Magnetization and Related Phenomena in Molecular Materials
Квантовое туннелирование намагниченности и родственные явления в молекулярных материалах
2003-01-20
SCID: 54.1/nwxwzb5v
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Abstract (AI)
Molecules comprising a large number of coupled paramagnetic centers are attracting much interest because they may show properties which are intermediate between those of simple paramagnets and classical bulk magnets and provide unambiguous evidence of quantum size effects in magnets. To date, two cluster families, usually referred to as Mn12 and Fe8, have been used to test theories. However, it is reasonable to predict that other classes of molecules will be discovered which have similar or superior properties. To do this it is necessary that synthetic chemists have a good understanding of the correlation between the structure and properties of the molecules, for this it is necessary that concepts such as quantum tunneling, quantum coherence, quantum oscillations are understood. The goal of this article is to review the fundamental concepts needed to understand quantum size effects in molecular magnets and to critically report what has been done in the field to date.
Key Findings
1
Discovering molecular classes with comparable or superior properties requires understanding structure–property relationships in molecular magnets.
2
Mn12 and Fe8 cluster families have been the primary molecular systems used to test theories of quantum magnetism.
3
Molecular materials with many coupled paramagnetic centers exhibit properties intermediate between simple paramagnets and classical bulk magnets.
4
Quantum tunneling, quantum coherence, and quantum oscillations are fundamental concepts for interpreting quantum size effects and guiding molecular design.
5
These molecular magnets provide unambiguous evidence of quantum size effects in magnetic systems.
Research Object
molecular magnets comprising many coupled paramagnetic centers, particularly Mn12 and Fe8 clusters
Research Subject
quantum size effects and related phenomena, including quantum tunneling, quantum coherence, and quantum oscillations, and their relationship to molecular structure and properties
Publication Details
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2003-01-20
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