Picon, J. -D.Albuquerque, A. F.Schmidt, K. P.Laflorencie, N.Troyer, M.Mila, F.2010-11-302010-11-302010-11-30200810.1103/PhysRevB.78.184418https://infoscience.epfl.ch/handle/20.500.14299/60788WOS:000261214800064Using perturbative expansions and the contractor renormalization (CORE) algorithm, we obtain effective hard-core bosonic Hamiltonians describing the low-energy physics of S=1/2 spin-dimer antiferromagnets known to display supersolid phases under an applied magnetic field. The resulting effective models are investigated by means of mean-field analysis and quantum Monte Carlo simulations. A "leapfrog mechanism," through means of which extra singlets delocalize in a checkerboard-solid environment via correlated hoppings, is unveiled that accounts for the supersolid behavior.Renormalization-GroupFlow EquationsSystemsLatticeHeliumSuperfluidityHamiltoniansChainPhaseModelMechanisms for spin supersolidity in S=1/2 spin-dimer antiferromagnetstext::journal::journal article::research article