Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Single‐Molecule Magnets

View through CrossRef
Abstract Single‐molecule magnets (SMMs) are finite molecular species that display slow relaxation of their magnetization, equivalent to a magnetic memory effect. In this article, we give an overview of how SMM behavior can arise from the spin properties of a giant molecular spin or unpaired electrons on a single metal center. We outline the criteria for obtaining SMM properties, and how these have developed through theoretical insight to lead to the rapid advancement of SMM performance. We discuss the progression of the field from the original Mn 12 polymetallic cluster, to carefully engineered coordination complexes of Ln ions. Classes of compounds discussed include 3d, 3d–4f and 4f polymetallic clusters, 3d and 4f monometallic complexes, and homo‐ and hetero‐metallic exchange‐coupled SMMs, including those bridged by radical ligands and/or encapsulated in endohedral fullerenes. The state of the art in SMMs is discussed, leaving the reader with an up‐to‐date understanding of theory and synthetic design, with references to comprehensive reviews. For readers new or returning to the area, we highlight the standard experiments used to characterize SMMs—including magnetic hysteresis, zero‐field cooled/field cooled magnetic susceptibility, alternating current susceptibility, and magnetization decay measurements. We highlight the common pitfalls often encountered in the literature in measurements, data analysis, and structural correlation of properties. We aim to provide a clear background for relaxation mechanisms in SMMs and the quantification of performance using energy barriers, blocking temperatures, and relaxation rate. The reader is directed toward a series of proof‐of‐concept publications which have spearheaded the implementation of SMMs toward future applications in high‐density data storage, quantum information processing, and spintronics.
Title: Single‐Molecule Magnets
Description:
Abstract Single‐molecule magnets (SMMs) are finite molecular species that display slow relaxation of their magnetization, equivalent to a magnetic memory effect.
In this article, we give an overview of how SMM behavior can arise from the spin properties of a giant molecular spin or unpaired electrons on a single metal center.
We outline the criteria for obtaining SMM properties, and how these have developed through theoretical insight to lead to the rapid advancement of SMM performance.
We discuss the progression of the field from the original Mn 12 polymetallic cluster, to carefully engineered coordination complexes of Ln ions.
Classes of compounds discussed include 3d, 3d–4f and 4f polymetallic clusters, 3d and 4f monometallic complexes, and homo‐ and hetero‐metallic exchange‐coupled SMMs, including those bridged by radical ligands and/or encapsulated in endohedral fullerenes.
The state of the art in SMMs is discussed, leaving the reader with an up‐to‐date understanding of theory and synthetic design, with references to comprehensive reviews.
For readers new or returning to the area, we highlight the standard experiments used to characterize SMMs—including magnetic hysteresis, zero‐field cooled/field cooled magnetic susceptibility, alternating current susceptibility, and magnetization decay measurements.
We highlight the common pitfalls often encountered in the literature in measurements, data analysis, and structural correlation of properties.
We aim to provide a clear background for relaxation mechanisms in SMMs and the quantification of performance using energy barriers, blocking temperatures, and relaxation rate.
The reader is directed toward a series of proof‐of‐concept publications which have spearheaded the implementation of SMMs toward future applications in high‐density data storage, quantum information processing, and spintronics.

Related Results

Studies of sintered MRE-Fe-B magnets by DyF3 addition or diffusion treatment (MRE = Nd + Y + Dy)
Studies of sintered MRE-Fe-B magnets by DyF3 addition or diffusion treatment (MRE = Nd + Y + Dy)
Sintered MRE2(Fe, Co)14B magnets by DyF3 blending or diffusion treatment were investigated. “Base-line” magnets with a thickness of 1.5 mm were coated (painted) with DyF3 powder an...
Toughening Sm–Co Sintered Magnets Via Microstructure Modification with Additives
Toughening Sm–Co Sintered Magnets Via Microstructure Modification with Additives
The mechanical properties of the brittle Sm–Co permanent magnets are of great practical significance. However, studies on the magnets have mostly focused on their magnetic properti...
Experimental Study of a Levitating Carousel-Type Milking Platform
Experimental Study of a Levitating Carousel-Type Milking Platform
Previous studies have highlighted the potential of magnetic suspension technology for developing a levitating carousel-type milking platform based on permanent magnets and conducti...
Superconducting Magnets ‐ Principles, Operation, and Applications
Superconducting Magnets ‐ Principles, Operation, and Applications
Contemporary technical superconductors provide high Jc in wide range of magnetic fields and temperatures. These features are used in superconducting magnets to produce high fields,...
Single‐Molecule Light Microscopy
Single‐Molecule Light Microscopy
Abstract The complexity of biological processes requires experimental techniques which are able to resolve events on appropriate ...
Endoscopic retrieval of ingested magnets in children and role of magnetic retrievers
Endoscopic retrieval of ingested magnets in children and role of magnetic retrievers
Abstract Background Various high-powered magnetic toy sets constitute a major hazard as the small magnets can be easily swallowed or aspirated by yo...
The most efficient position of magnets
The most efficient position of magnets
People mount materials ranging from paper to wedding photo frames, including school notices to the refrigerators every day at home. The position of the mounts used is essential for...
Short-loop Recycling Of Sintered NdFeB Magnets By Hydrogen Decrepitation
Short-loop Recycling Of Sintered NdFeB Magnets By Hydrogen Decrepitation
NdFeB permanent magnets are essential components for the rising green transition technologies including electric vehicles and wind turbines. These magnets contain critical Rare-Ear...

Back to Top