Magnetic ground-state of the one-dimensional ferromagnetic chain compounds $M$(NCS)$_2$(thiourea)$_2$; $M$ = Ni, Co
Samuel P. M. Curley, Rebecca Scatena, Robert C. Williams, Paul A., Goddard, Piero Macchi, Thomas J. Hicken, Tom Lancaster, Fan Xiao, Stephen J., Blundell, Vivien Zapf, James C. Eckert, Elizabeth H. Krenkel, Jacqueline A., Villa, Melissa L. Rhodehouse, Jamie L. Manson

TL;DR
This study investigates the magnetic ground states of one-dimensional ferromagnetic chain compounds with Ni and Co, revealing their quasi-one-dimensional behavior, magnetic anisotropy, and the effects of structural substitution on magnetic properties.
Contribution
It provides a detailed characterization of Ni(NCS)$_{2}$(thiourea)$_{2}$ and Co(NCS)$_{2}$(thiourea)$_{2}$, highlighting their magnetic anisotropy, exchange interactions, and the impact of replacing halide ions on their magnetic behavior.
Findings
Both compounds exhibit low-temperature long-range magnetic order.
They show highly quasi-one-dimensional magnetic behavior.
Substituting Cl$^-$ with NCS$^-$ significantly alters structural and magnetic properties.
Abstract
The magnetic properties of the two isostructural molecule-based magnets, Ni(NCS)(thiourea), = 1, [thiourea = SC(NH)] and Co(NCS)(thiourea), = 3/2, are characterised using several techniques in order to rationalise their relationship with structural parameters and ascertain magnetic changes caused by substitution of the spin. Zero-field heat capacity and muon-spin relaxation measurements reveal low-temperature long-range ordering in both compounds, in addition to Ising-like () single-ion anisotropy ( -100 K, -10 K). Crystal and electronic structure, combined with DC-field magnetometry, affirm highly quasi-one-dimensional behaviour, with ferromagnetic intrachain exchange interactions K and K and weak antiferromagnetic interchain exchange, on the order of …
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