6533b7d6fe1ef96bd1266fb2

RESEARCH PRODUCT

Experimental determination of single molecule toroic behaviour in a Dy8 single molecule magnet

Shiqi LiShiqi LiDimitris I. AlexandropoulosAlejandro Gaita-ariñoQing ZhangQing ZhangTheocharis C. StamatatosMyriam P. SarachikMyriam P. SarachikMichael L. BakerJosé J. BaldovíEugenio Coronado

subject

PhysicsMagnetometerUNESCO::QUÍMICA02 engineering and technologySpin structure010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesMolecular physics:QUÍMICA [UNESCO]0104 chemical scienceslaw.inventionIonCoupling (physics)Magnetic anisotropylawMoleculeGeneral Materials ScienceSingle-molecule magnet0210 nano-technologyGround state

description

The enhancement of toroic motifs through coupling toroidal moments within molecular nanomagnets is a new, interesting and relevant approach for both fundamental research and potential quantum computation applications. We investigate a Dy8 molecular cluster and discover it has a antiferrotoroic ground state with slow magnetic relaxation. The experimental characterization of the magnetic anisotropy axes of each magnetic center and their exchange interactions represents a considerable challenge due to the non-magnetic nature of the toroidal motif. To overcome this and obtain access to the low energy states of Dy8 we establish a multi-orientation single-crystal micro Hall sensor magnetometry approach. Using an effective Hamiltonian model we then unpick the microscopic spin structure of Dy8, leading to a canted antiferrotoroidic tetramer molecular ground state. These findings are supported with electrostatic calculations that independently confirm the experimentally determined magnetic anisotropy axes for each DyIII ion within the molecule. ARO W911NF-13-1-1025 NSF-DMR-1309008 NSF-DMR-1309202 MAT2017-89528 CTQ2017-89993 MDM-2015-0538 ERC-CoG-647301 DECRESIM COST-MOLSPIN CA15128 Prometeo Program of excellence The enhancement of toroic motifs through coupling toroidal moments within molecular nanomagnets is a new, interesting and relevant approach for both fundamental research and potential quantum computation applications. We investigate a Dy8 molecular cluster and discover it has a antiferrotoroic ground state with slow magnetic relaxation. The experimental characterization of the magnetic anisotropy axes of each magnetic center and their exchange interactions represents a considerable challenge due to the non-magnetic nature of the toroidal motif. To overcome this and obtain access to the low energy states of Dy8 we establish a multi-orientation single-crystal micro Hall sensor magnetometry approach. Using an effective Hamiltonian model we then unpick the microscopic spin structure of Dy8, leading to a canted antiferrotoroidic tetramer molecular ground state. These findings are supported with electrostatic calculations that independently confirm the experimentally determined magnetic anisotropy axes for each DyIII ion within the molecule.

10.1039/c9nr05182ahttps://doi.org/10.1039/C9NR05182A