Controlling the magnetic anisotropy of molecular layers assembled on a surface is one of the challenges that needs to be addressed to create the next-generation spintronic devices. Recently, metal complexes that show a reversible solid-state switch of their magnetic anisotropy in response to physical stimuli, such as temperature and magnetic field, have been discovered. The complex Nd(trensal) (H3trensal = 2,2 ',2 ''-tris(salicylideneimino)triethylamine) is predicted to exhibit such property. An ultra-thin film of Nd(trensal) is deposited on highly ordered pyrolytic graphite as a proof-of-concept system to show that this property can be retained at the nanoscale on a layered material. By combining single crystal magnetometric measurements and synchrotron X-ray-based absorption techniques, supported by multiplet ligand field simulations based on the trigonal crystal field surrounding the lanthanide centre, it is demonstrated that changing the temperature reverses the magnetic anisotropy of an ordered film of Nd(trensal), thus opening significant perspectives for the realization of a novel family of temperature-controlled molecular spintronic devices.Nd(trensal) is a mononuclear lanthanide complex which undergoes a switch of the magnetic anisotropy from easy-axis to easy-plane modifying the temperature. When deposited as an ultra-thin film over highly ordered pyrolityc graphtie this phenomenon is retained. image
Temperature Induced Reversible Switching of the Magnetic Anisotropy in a Neodymium Complex Adsorbed on Graphite / Tacconi, Leonardo; Leiszner, Sofie S.; Briganti, Matteo; Cucinotta, Giuseppe; Otero, Edwige; Mannini, Matteo; Perfetti, Mauro. - In: SMALL. - ISSN 1613-6810. - ELETTRONICO. - (2024), pp. 2401627-2401632. [10.1002/smll.202401627]
Temperature Induced Reversible Switching of the Magnetic Anisotropy in a Neodymium Complex Adsorbed on Graphite
Tacconi, Leonardo;Briganti, Matteo;Mannini, Matteo
;Perfetti, Mauro
2024
Abstract
Controlling the magnetic anisotropy of molecular layers assembled on a surface is one of the challenges that needs to be addressed to create the next-generation spintronic devices. Recently, metal complexes that show a reversible solid-state switch of their magnetic anisotropy in response to physical stimuli, such as temperature and magnetic field, have been discovered. The complex Nd(trensal) (H3trensal = 2,2 ',2 ''-tris(salicylideneimino)triethylamine) is predicted to exhibit such property. An ultra-thin film of Nd(trensal) is deposited on highly ordered pyrolytic graphite as a proof-of-concept system to show that this property can be retained at the nanoscale on a layered material. By combining single crystal magnetometric measurements and synchrotron X-ray-based absorption techniques, supported by multiplet ligand field simulations based on the trigonal crystal field surrounding the lanthanide centre, it is demonstrated that changing the temperature reverses the magnetic anisotropy of an ordered film of Nd(trensal), thus opening significant perspectives for the realization of a novel family of temperature-controlled molecular spintronic devices.Nd(trensal) is a mononuclear lanthanide complex which undergoes a switch of the magnetic anisotropy from easy-axis to easy-plane modifying the temperature. When deposited as an ultra-thin film over highly ordered pyrolityc graphtie this phenomenon is retained. imageFile | Dimensione | Formato | |
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Small - 2024 - Tacconi - Temperature Induced Reversible Switching of the Magnetic Anisotropy in a Neodymium Complex.pdf
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