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Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform

A device architecture utilizing a single-molecule magnet (SMM) as a device element between two ferromagnetic electrodes may open vast opportunities to create novel molecular spintronics devices. Here, we report a method of connecting an SMM to the ferromagnetic electrodes. We utilized a nickel (Ni)–...

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Autores principales: Tyagi, Pawan, Riso, Christopher, Amir, Uzma, Rojas-Dotti, Carlos, Martínez-Lillo, Jose
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9051408/
https://www.ncbi.nlm.nih.gov/pubmed/35492095
http://dx.doi.org/10.1039/c9ra09003g
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author Tyagi, Pawan
Riso, Christopher
Amir, Uzma
Rojas-Dotti, Carlos
Martínez-Lillo, Jose
author_facet Tyagi, Pawan
Riso, Christopher
Amir, Uzma
Rojas-Dotti, Carlos
Martínez-Lillo, Jose
author_sort Tyagi, Pawan
collection PubMed
description A device architecture utilizing a single-molecule magnet (SMM) as a device element between two ferromagnetic electrodes may open vast opportunities to create novel molecular spintronics devices. Here, we report a method of connecting an SMM to the ferromagnetic electrodes. We utilized a nickel (Ni)–AlO(x)–Ni magnetic tunnel junction (MTJ) with the exposed side edges as a test bed. In the present work, we utilized an SMM with a hexanuclear [Mn(6)(μ(3)-O)(2)(H(2)N-sao)(6)(6-atha)(2)(EtOH)(6)] [H(2)N-saoH = salicylamidoxime, 6-atha = 6-acetylthiohexanoate] complex that is attached to alkane tethers terminated with thiols. These Mn-based molecules were electrochemically bonded between the two Ni electrodes of an exposed-edge tunnel junction, which was produced by the lift-off method. The SMM-treated MTJ exhibited current enhancement and transitory current suppression at room temperature. Monte Carlo simulation was utilized to understand the transport properties of our molecular spintronics device.
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spelling pubmed-90514082022-04-29 Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform Tyagi, Pawan Riso, Christopher Amir, Uzma Rojas-Dotti, Carlos Martínez-Lillo, Jose RSC Adv Chemistry A device architecture utilizing a single-molecule magnet (SMM) as a device element between two ferromagnetic electrodes may open vast opportunities to create novel molecular spintronics devices. Here, we report a method of connecting an SMM to the ferromagnetic electrodes. We utilized a nickel (Ni)–AlO(x)–Ni magnetic tunnel junction (MTJ) with the exposed side edges as a test bed. In the present work, we utilized an SMM with a hexanuclear [Mn(6)(μ(3)-O)(2)(H(2)N-sao)(6)(6-atha)(2)(EtOH)(6)] [H(2)N-saoH = salicylamidoxime, 6-atha = 6-acetylthiohexanoate] complex that is attached to alkane tethers terminated with thiols. These Mn-based molecules were electrochemically bonded between the two Ni electrodes of an exposed-edge tunnel junction, which was produced by the lift-off method. The SMM-treated MTJ exhibited current enhancement and transitory current suppression at room temperature. Monte Carlo simulation was utilized to understand the transport properties of our molecular spintronics device. The Royal Society of Chemistry 2020-03-31 /pmc/articles/PMC9051408/ /pubmed/35492095 http://dx.doi.org/10.1039/c9ra09003g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tyagi, Pawan
Riso, Christopher
Amir, Uzma
Rojas-Dotti, Carlos
Martínez-Lillo, Jose
Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title_full Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title_fullStr Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title_full_unstemmed Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title_short Exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
title_sort exploring room-temperature transport of single-molecule magnet-based molecular spintronics devices using the magnetic tunnel junction as a device platform
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9051408/
https://www.ncbi.nlm.nih.gov/pubmed/35492095
http://dx.doi.org/10.1039/c9ra09003g
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