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Spin gap in S=1/2 1D Heisenberg antiferromagnetic chain, Cu(C<sub>6</sub>H<sub>8</sub>N<sub>2</sub>)ClBr

ORAL

Abstract

We report a randomness induced spin gap in Cu2+ (S=1/2) Heisenberg antiferromagnetic (HAF) chain, Cu(C6H8N2)ClBr. Zero field muon spin relaxation (mSR)data suggest that there is no magnetic ordering down to 50 mK in spite of an antiferromagnetic Curie-Weiss temperature, K, extracted from bulk magnetic susceptibility. The mSR rate increases around 1 K from a nuclear dominated value to a constant below 1 K indicating persistent dynamics in the system. Longitudinal field-μSR measurements indicate the diffusive motion of spinons, potentially resulting from chain breaks. 1H-spin lattice relaxation rate, 1/T1 shows an exponential decay below about 3 K, indicating gapped excitations. The magnetic heat capacity also shows an exponential decay with temperature in zero field with gaps of about 0.5 K and 3 K indicating gapped excitations, which is consistent with 1H-NMR-1/T1. On application of a 3 Tesla magnetic field, the gap closes and a power law variation has been observed in the magnetic heat capacity. All these results suggest that a spin gap opens up at low-T in the titled 1 D HAF chain material.

Presenters

  • Sanjay Bachhar

    Duke University

Authors

  • Sanjay Bachhar

    Duke University

  • Saikat Nandi

    IIT Bombay

  • MONIKA M JAWALE

    INDIAN INSTITUTE OF TECHNOLOGY BOMBAY

  • Rahul Kumar

    Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR)

  • Rabindranath Bag

    Duke University

  • John Wilkinson

    ISIS Pulsed, Neutron and Muon Source, STFC Rutherford Appleton Laboratory, Harwell Campus, Didcot, Oxfordshire OX110QX, United Kingdom

  • Joerg Sichelschmidt

    Max Planck Institute for Chemical Physics of Solids, Dresden, Max Planck Institute for Chemical Physics of Solids, 01187 Dresden, Germany

  • Norbert Büttgen

    EP V, University of Augsburg, Augsburg, University of Augsburg

  • A Sundaresan

    Jawaharlal Nehru Centre for Advanced Scientific Research

  • Sara Haravifard

    Duke University

  • Avinash V Mahajan

    Indian Institute of Technology Bombay