Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance
The electron transport of Phthalocyanines (Pc) with central metal and di-axial ligands (such as FeIII(Pc)L2; where L = CN, Cl, Br) originates from its intermolecular Pc π-π orbital overlap while its giant negative magnetoresistance (GNMR) arises from its intramolecular Pc-π(HOMO) and Fe-d (s=1/2) in...
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Growing Science
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doaj-0d697dde22344cd082c17c8de25cd19b2020-11-24T23:24:43ZengGrowing ScienceCurrent Chemistry Letters1927-72961927-730X2015-01-01411610.5267/j.ccl.2014.12.003Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative MagnetoresistanceMario A.V. GamboaJoey A.A. ValintonDerrick E.C. YuThe electron transport of Phthalocyanines (Pc) with central metal and di-axial ligands (such as FeIII(Pc)L2; where L = CN, Cl, Br) originates from its intermolecular Pc π-π orbital overlap while its giant negative magnetoresistance (GNMR) arises from its intramolecular Pc-π(HOMO) and Fe-d (s=1/2) interaction. However, the π-d interaction tends to localize itinerant electrons resulting in the decrease in the conductivity of the FeIII(Pc)L2 series compared to the non-magnetic CoIII(Pc)L2 where π-d interaction is absent. More so, the axial ligand field energy of the FeIII(Pc)L2 system is found to have the ability to proportionally modulate the π-d interaction. In reference thereof, theoretical calculations point that isostructural RuIII(Pc)Br2 would provide the best balance of π-d orbital energy interplay. That is, RuIII(Pc)Br2 is expected to be a molecule with high electrical conductivity and GNMR which would make it an ideal magnetic molecular conductor. This paper reports on the synthesis of RuIII(Pc)Br2.http://www.growingscience.com/ccl/Vol4/ccl_2014_23.pdf Axially-ligated rutheniumGiant negative magnetoresistanceMolecular conductorMolecular engineeringphthalocyanine |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mario A.V. Gamboa Joey A.A. Valinton Derrick E.C. Yu |
spellingShingle |
Mario A.V. Gamboa Joey A.A. Valinton Derrick E.C. Yu Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance Current Chemistry Letters Axially-ligated ruthenium Giant negative magnetoresistance Molecular conductor Molecular engineering phthalocyanine |
author_facet |
Mario A.V. Gamboa Joey A.A. Valinton Derrick E.C. Yu |
author_sort |
Mario A.V. Gamboa |
title |
Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance |
title_short |
Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance |
title_full |
Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance |
title_fullStr |
Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance |
title_full_unstemmed |
Synthesis of Ruthenium(III) Phthalocyanine with Di-axial Bromo Ligands - A Promising Molecular Conductor with Giant Negative Magnetoresistance |
title_sort |
synthesis of ruthenium(iii) phthalocyanine with di-axial bromo ligands - a promising molecular conductor with giant negative magnetoresistance |
publisher |
Growing Science |
series |
Current Chemistry Letters |
issn |
1927-7296 1927-730X |
publishDate |
2015-01-01 |
description |
The electron transport of Phthalocyanines (Pc) with central metal and di-axial ligands (such as FeIII(Pc)L2; where L = CN, Cl, Br) originates from its intermolecular Pc π-π orbital overlap while its giant negative magnetoresistance (GNMR) arises from its intramolecular Pc-π(HOMO) and Fe-d (s=1/2) interaction. However, the π-d interaction tends to localize itinerant electrons resulting in the decrease in the conductivity of the FeIII(Pc)L2 series compared to the non-magnetic CoIII(Pc)L2 where π-d interaction is absent. More so, the axial ligand field energy of the FeIII(Pc)L2 system is found to have the ability to proportionally modulate the π-d interaction. In reference thereof, theoretical calculations point that isostructural RuIII(Pc)Br2 would provide the best balance of π-d orbital energy interplay. That is, RuIII(Pc)Br2 is expected to be a molecule with high electrical conductivity and GNMR which would make it an ideal magnetic molecular conductor. This paper reports on the synthesis of RuIII(Pc)Br2. |
topic |
Axially-ligated ruthenium Giant negative magnetoresistance Molecular conductor Molecular engineering phthalocyanine |
url |
http://www.growingscience.com/ccl/Vol4/ccl_2014_23.pdf |
work_keys_str_mv |
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