Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet

Chemical modifications of the magnetic metal organic framework (MOF) Cu9X2(cpa)6·42H2O (X = F, Cl, Br; cpa = anion of 2-carboxypentonicacid) have been investigated as a means of modifying, in a tunable manner, the magnetism of this 2-D material best described as a triangles-in-triangles (TIT) or tri...

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Main Authors: Heather S. C. Hamilton, William M. Farmer, Samuel F. Skinner, Leonard W. ter Haar
Format: Article
Language:English
Published: AIP Publishing LLC 2018-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5006791
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spelling doaj-29facf609795483ab064a548b8264c782020-11-24T21:32:58ZengAIP Publishing LLCAIP Advances2158-32262018-05-0185055802055802-610.1063/1.5006791075891ADVMetal organic framework Cu9Cl2(cpa)6 as tunable molecular magnetHeather S. C. Hamilton0William M. Farmer1Samuel F. Skinner2Leonard W. ter Haar3Department of Chemistry, University of West Florida, Pensacola, Florida 32514, USADepartment of Chemistry, University of West Florida, Pensacola, Florida 32514, USADepartment of Chemistry, University of West Florida, Pensacola, Florida 32514, USADepartment of Chemistry, University of West Florida, Pensacola, Florida 32514, USAChemical modifications of the magnetic metal organic framework (MOF) Cu9X2(cpa)6·42H2O (X = F, Cl, Br; cpa = anion of 2-carboxypentonicacid) have been investigated as a means of modifying, in a tunable manner, the magnetism of this 2-D material best described as a triangles-in-triangles (TIT) or triangulated-Kagomé-latttice (TKL). Since numerous theoretical studies have already attempted to describe the enigmatic ground state of this Heisenberg lattice, tunable chemical modifications should provide an excellent opportunity to expand this class of materials for studies concerning fundamental physics of frustrated spins, and applications such as adiabatic demagnetization refrigeration (ADR) that depend on the magnetocaloric effect (MCE). The chemical modification investigated is the intercalation of d- and f-orbital ions into the voids of the framework (channels of nearly 20 Å diameter). Magnetic measurements in the temperature range 1.8 – 300 K confirm signature features of TKL magnetism in intercalated samples persist, specifically: i) large negative Weiss constant (θCW); ii) absence of a phase transition down to 1.8 K; iii) minimum in χMT; iv) low temperature χMT values increasingly divergent at low fields indicating net ferromagnetic correlations; and, v) increasing field dependence of magnetization at low temperatures suggestive of intermediate plateaus, or ferrimagnetism, not saturation.http://dx.doi.org/10.1063/1.5006791
collection DOAJ
language English
format Article
sources DOAJ
author Heather S. C. Hamilton
William M. Farmer
Samuel F. Skinner
Leonard W. ter Haar
spellingShingle Heather S. C. Hamilton
William M. Farmer
Samuel F. Skinner
Leonard W. ter Haar
Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
AIP Advances
author_facet Heather S. C. Hamilton
William M. Farmer
Samuel F. Skinner
Leonard W. ter Haar
author_sort Heather S. C. Hamilton
title Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
title_short Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
title_full Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
title_fullStr Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
title_full_unstemmed Metal organic framework Cu9Cl2(cpa)6 as tunable molecular magnet
title_sort metal organic framework cu9cl2(cpa)6 as tunable molecular magnet
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2018-05-01
description Chemical modifications of the magnetic metal organic framework (MOF) Cu9X2(cpa)6·42H2O (X = F, Cl, Br; cpa = anion of 2-carboxypentonicacid) have been investigated as a means of modifying, in a tunable manner, the magnetism of this 2-D material best described as a triangles-in-triangles (TIT) or triangulated-Kagomé-latttice (TKL). Since numerous theoretical studies have already attempted to describe the enigmatic ground state of this Heisenberg lattice, tunable chemical modifications should provide an excellent opportunity to expand this class of materials for studies concerning fundamental physics of frustrated spins, and applications such as adiabatic demagnetization refrigeration (ADR) that depend on the magnetocaloric effect (MCE). The chemical modification investigated is the intercalation of d- and f-orbital ions into the voids of the framework (channels of nearly 20 Å diameter). Magnetic measurements in the temperature range 1.8 – 300 K confirm signature features of TKL magnetism in intercalated samples persist, specifically: i) large negative Weiss constant (θCW); ii) absence of a phase transition down to 1.8 K; iii) minimum in χMT; iv) low temperature χMT values increasingly divergent at low fields indicating net ferromagnetic correlations; and, v) increasing field dependence of magnetization at low temperatures suggestive of intermediate plateaus, or ferrimagnetism, not saturation.
url http://dx.doi.org/10.1063/1.5006791
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