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首页> 外文期刊>Advanced Functional Materials >Synthesis and Magnon Thermal Transport Properties of Spin Ladder Sr_(14)Cu_(24)O_(41) Microstructures
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Synthesis and Magnon Thermal Transport Properties of Spin Ladder Sr_(14)Cu_(24)O_(41) Microstructures

机译:旋转梯SR_(14)Cu_(24)O_(41)微结构的合成和肿瘤热传输性能

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摘要

Abstract The spin ladder compound (Sr,Ca,La)14Cu24O41 exhibits an incommensurate layered structure with strong antiferromagnetic coupling. Besides intriguing superconducting behavior, recent experiments on bulk Sr14Cu24O41 single crystals have revealed a remarkable magnon thermal conductivity, which is the largest above 100 K among all known quantum magnets. Although bulk (Sr,Ca,La)14Cu24O41 crystals have been synthesized and studied extensively, there have been few reports on the synthesis and magnon thermal transport investigation of their microstructures. Here, the synthesis and thermal transport properties of Sr14Cu24O41 microrods are reported. Electron microscopy studies indicate that these microrods synthesized by a coprecipitation 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 1D magnon transport along the ladder. Moreover, the thermal conductivity is enhanced after annealing as a result of reduced oxygen vacancies. These results help to build the foundation for future heterogeneous integration of magnetic microstructures in microscale devices for the transport of energy and quantum information.
机译:摘要旋转梯形化合物(SR,CA,LA)14Cu24O41具有带有强抗磁性耦合的即表达层状结构。除了有趣的超导行为之外,最近关于散装SR14Cu24O41单晶的实验表明,所有已知量子磁体中的最大100 k是最大的100 k。虽然散装(SR,CA,LA)14Cu24O41晶体已被广泛合成和研究,但仍有关于其微观结构的合成和肿瘤热传输研究的报道。这里,报道了SR14Cu24O41微孔的合成和热传输性能。电子显微镜研究表明,通过共沉淀方法合成的这些微火车是沿着梯形轴优先生长的单晶。基于四探针热传输测量,微孔的导热率揭示了微观结构中的可观的Magnon传输。根据动力学模型分析,微孔中的MAGNON传输主要通过与散装晶体相比增加的点缺陷散射来抑制,而沿着梯子的各向异性1D氧化镁传输,表面散射可忽略不计。此外,由于减少了氧空位,在退火之后提高了导热率。这些结果有助于为未来磁体显微结构的未来非均匀集成用于传输能量和量子信息的基础。

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