Jack Emerson-King, Benjamin E Atkinson, William J A Blackmore, Jacinta Rees, Sophie C Corner, Jack Baldwin, Nicholas F Chilton, David P Mills
Molecules showing magnetic memory effects at high temperatures could be used in high-density data storage devices. A magnetic hysteresis temperature (TH) of 100 K has been achieved for a near-linear dysprosium bis(amide)-alkene single-molecule magnet (SMM), and a bent dysprosium cyclopentadienyl-amide SMM has shown TH = 73 K. However, both these complexes exhibit fast magnetic relaxation at lower temperatures compared to dysprosium bis(cyclopentadienyl) SMMs. Here we report the synthesis of two highly axial dysprosium cyclopentadienyl-amide SMMs, [Dy{N(SiiPr3)2}(CpR)][Al{OC(CF3)3}4] (1-Dy, CpR = Cpttt, C5H2tBu3-1,2,4; 2-Dy, CpR = Cp''', C5H2(SiMe3)3-1,2,4). We find TH = 91 K for 1-Dy and 92 K for 2-Dy; ab initio calculations on 1-Dy show that magnetic relaxation is controlled by a combination of short dysprosium-ligand distances, a near-linear N-Dy-Cp'''centroid angle, and constrained vibrational modes. Together, this work demonstrates that dysprosium SMMs with large TH values can be achieved with a judicious combination of π-aromatic and σ-donor ligands.