Emergence of long-range order in sheets of magnetic dimers

Proc Natl Acad Sci U S A. 2014 Oct 7;111(40):14372-7. doi: 10.1073/pnas.1413318111. Epub 2014 Sep 22.

Abstract

Quantum spins placed on the corners of a square lattice can dimerize and form singlets, which then can be transformed into a magnetic state as the interactions between dimers increase beyond threshold. This is a strictly 2D transition in theory, but real-world materials often need the third dimension to stabilize long-range order. We use high pressures to convert sheets of Cu(2+) spin 1/2 dimers from local singlets to global antiferromagnet in the model system SrCu2(BO3)2. Single-crystal neutron diffraction measurements at pressures above 5 GPa provide a direct signature of the antiferromagnetic ordered state, whereas high-resolution neutron powder and X-ray diffraction at commensurate pressures reveal a tilting of the Cu spins out of the plane with a critical exponent characteristic of 3D transitions. The addition of anisotropic, interplane, spin-orbit terms in the venerable Shastry-Sutherland Hamiltonian accounts for the influence of the third dimension.

Keywords: condensed matter physics; dimensional cross-over; neutron and X-ray scattering; phase transition; quantum magnetism.

Publication types

  • Research Support, U.S. Gov't, Non-P.H.S.