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Synthesis and magnon thermal transport properties of spin ladder Sr<sub>14</sub>Cu<sub>24</sub>O<sub>41</sub> microstructures

POSTER

Abstract

Recent experiments on Sr14Cu24O41 bulk single crystals have revealed a remarkable magnon thermal conductivity. Although Sr14Cu24O41 crystals have been grown and studied extensively, there have been few reports on the synthesis and magnon thermal transport investigation of their microstructures. Here, we report the synthesis and thermal transport properties of Sr14Cu24O41 microrods. These microrods synthesized by a co-precipitation method are single crystals grown preferentially along the ladder axis. Based on a four-probe thermal transport measurement, the thermal conductivity of the microrods reveals appreciable magnon transport in the microstructures. According to a kinetic model analysis, magnon transport in the microrods is suppressed mainly by increased point defect scattering compared to the bulk crystals, whereas surface scattering is negligible for anisotropic one-dimensional magnon transport along the ladder. Moreover, the thermal conductivity is enhanced after annealing as a result of reduced oxygen vacancies. These results provide useful insight on the transport of heat and quantum information based on quantum micro- and nanostructures.

Presenters

  • Xi Chen

    University of California, Riverside

Authors

  • Xi Chen

    University of California, Riverside

  • Jaehyun Kim

    University of Texas at Austin

  • Qianru Jia

    University of Texas at Austin

  • Sean E Sullivan

    University of Texas at Austin

  • Youming Xu

    University of California, Riverside

  • Karalee Jarvis

    University of Texas at Austin

  • Jianshi Zhou

    University of Texas at Austin, Materials Science and Engineering Program, Department of Mechanical Engineering, University of Texas at Austin, University of Texas (Austin, USA), University of Texas, Texas Materials Institute, University of Texas at Austin, Materials Science and Engineering Program, Mechanical Engineering, University of Texas at Austin

  • Li Shi

    University of Texas at Austin, Mechanical Engineering, University of Texas at Austin