Properties of the random-singlet phase

ORAL

Abstract

We use a strong-disorder renormalization group (SDRG) method and ground-state quantum Monte Carlo (QMC) simulations to study $S=1/2$ spin chains with random couplings, calculating disorder-averaged spin and dimer correlations. The QMC simulations demonstrate logarithmic corrections to the power-law decaying correlations obtained with the SDRG scheme. The same asymptotic forms apply both for systems with standard Heisenberg exchange and for certain multi-spin couplings leading to spontaneous dimerization in the clean system. We show that the logarithmic corrections arise in the valence-bond (singlet pair) basis from a contribution that can not be generated by the SDRG scheme. In the model with multi-spin couplings, where the clean system dimerizes spontaneously, random singlets form between spinons localized at domain walls in the presence of disorder. This amorphous valence-bond solid is asymptotically a random-singlet state and only differs from the random-exchange Heisenberg chain in its short-distance properties.(See also arXiv:1603.04362).

*This work is supported by the NSF under Grant No. DMR-1410126 and by the Simons Foundation, Grants NBRPC-2012CB821400, NSFC-11275279, NSFC-11574404, NSFC-GD Joint Fund and GZ-NSCC and No. 105-2112-M-004-002, 104-2112-M-004-002, 101-2112-M-004-005-MY3

Authors

  • Yu-Rong Shu

    • Sun Yat-Sen University
  • Dao-Xin Yao

    • Sun Yat-Sen University
  • Chih-Wei Ke

    • National Chengchi University
  • Yu-Cheng Lin

    • National Chengchi University
  • Anders Sandvik

    • Boston University