Unconventional field-induced spin gap in an S=1/2 Chiral staggered chain
Physical Review Letters American Physical Society 122 (2019) 057207
Abstract:
We investigate the low-temperature magnetic properties of the molecule-based chiral spin chain 陆Cu冒pym脼冒H2O脼4SiF6 路 H2O (pym 录 pyrimidine). Electron-spin resonance, magnetometry and heat capacity measurements reveal the presence of staggered g tensors, a rich low-temperature excitation spectrum, a staggered susceptibility, and a spin gap that opens on the application of a magnetic field. These phenomena are reminiscent of those previously observed in nonchiral staggered chains, which are explicable within the sine-Gordon quantum-field theory. In the present case, however, although the sineGordon model accounts well for the form of the temperature dependence of the heat capacity, the size of the gap and its measured linear field dependence do not fit with the sine-Gordon theory as it stands. We propose that the differences arise due to additional terms in the Hamiltonian resulting from the chiral structure of 陆Cu冒pym脼冒H2O脼4SiF6 路 H2O, particularly a uniform Dzyaloshinskii-Moriya coupling and a fourfold periodic staggered field.Magnetic order and enhanced exchange in the quasi-one-dimensional molecule-based antiferromagnet Cu(NO3)2(pyz)3
Physical Chemistry Chemical Physics Royal Society of Chemistry 21 (2018) 1014-1018
Abstract:
The quasi-one-dimensional molecule-based Heisenberg antiferromagnet Cu(NO3)2(pyz)3 has an intrachain coupling J = 13.7(1) K () and exhibits a state of long-range magnetic order below TN = 0.105(1) K. The ratio of interchain to intrachain coupling is estimated to be |J'/J| = 3.3 脳 10-3, demonstrating a high degree of isolation for the Cu chains.Discrete and 1D Polymeric Copper(II) Complexes of Tetranuclear Cubane鈥恖ike Units: Structural and Magnetic Characterization
ChemistrySelect Wiley 3:34 (2018) 9885-9891
Field-induced canting of magnetic moments in GdCo5 at finite temperature: first-principles calculations and high-field measurements
Journal of Physics: Condensed Matter IOP Science 30:32 (2018) 32LT01
Abstract:
We present calculations and experimental measurements of the temperature-dependent magnetization of a single crystal of GdCo5 in magnetic fields of order 60 T. At zero temperature the calculations, based on density-functional theory in the disordered-local-moment picture, predict a field-induced transition from an antiferromagnetic to a canted alignment of Gd and Co moments at 46.1 T. At higher temperatures the calculations find this critical field to increase along with the zero-field magnetization. The experimental measurements observe this transition to occur between 44-48 T at 1.4 K. Up to temperatures of at least 100 K, the experiments continue to observe the transition; however, at variance with the calculations, no strong temperature dependence of the critical field is apparent. We assign this difference to the inaccurate description of the zero-field magnetization of the calculations at low temperatures, due to the use of classical statistical mechanics. Correcting for this effect, we recover a consistent description of the high-field magnetization of GdCo5 from theory and experiment.Preparation and characterization of manganese, cobalt and zinc DNA nanoflowers with tuneable morphology, DNA content and size
Nucleic Acids Research Oxford University Press 2018:1 (2018)