Magnetic properties of the geometrically frustrated S=1/2 antiferromagnets, La2LiMoO6 and Ba2YMoO6, with the B-site ordered double perovskite structure: Evidence for a Collective Spin Singlet Ground State
T. Aharen, J. E. Greedan, A. A. Aczel, J. Rodriguez, G. McDougall, G., M. Luke, T. Imai, V. K. Michaelis, S. Kroeker, H. Zhou, C. Wiebe, L. M.D., Cranswick

TL;DR
This study investigates the magnetic properties of La2LiMoO6 and Ba2YMoO6, revealing evidence for a collective spin singlet ground state due to geometric frustration, with no long-range magnetic order observed.
Contribution
It provides experimental evidence for a spin singlet ground state in B-site ordered double perovskites with S=1/2 ions, expanding understanding of frustrated magnetism in these materials.
Findings
No long-range magnetic order observed down to 2K.
Evidence of short-range correlations and spin singlet state.
Distinct local spin susceptibility components below 70K.
Abstract
Two B-site ordered double perovskites, La2LiMoO6 and Ba2YMoO6, based on the S = 1/2 ion, Mo5+, have been investigated in the context of geometric magnetic frustration. Powder neutron diffraction, heat capacity, susceptibility, muon spin relaxation(_SR), and 89Y NMR- including MAS NMR- data have been collected. La2LiMoO6 deviates strongly from simple Curie-Weiss paramagnetic behavior below 150K and zero-field cooled/ field cooled (ZFC/FC)irreversibility occurs below 20K with a weak, broad susceptibility maximum near 5K in the ZFC data. A Curie-Weiss fit shows a reduced mu_eff=1.42\mu_B, (spin only = 1.73 muB) and a Weiss temperature, \theta_c, which depends strongly on the temperature range of the fit. Powder neutron diffraction, heat capacity and 7Li NMR show no evidence for long range magnetic order to 2K. On the other hand oscillations develop below 20K in muSR indicating at least…
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