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首页> 外文期刊>Physical review, B >Mechanisms of spin-charge conversion for the electrical readout of 4f quantum states in a TbPc2 single-molecule magnet spin transistor
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Mechanisms of spin-charge conversion for the electrical readout of 4f quantum states in a TbPc2 single-molecule magnet spin transistor

机译:在TBPC2单分子磁体旋转晶体管中为4F量子态电读出的旋转电荷转换机制

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We present a theoretical study exposing the dominant microscopic electronic transport mechanisms underlying a recent molecular spin-transistor experiment [C. Godfrin et al., ACS Nano 11, 3984 (2017)], where purely electrical readout of the spin of a Tb(III)-based single-molecule magnet was achieved. To identify the relevant spin-to-charge conversion mechanisms enabling opposite spin polarizations of the Tb(III) ion 4f electrons to generate different magnetoconductance responses, we investigate both incoherent sequential tunneling charge transport, and coherent cotunneling corrections. Contrary to previous interpretations invoking the highly coherent Kondo transport regime, we find that all reported experimental observations, including the temperature and magnetic field dependence of the differential conductance, can be reproduced reasonably well within a sequential tunneling transport regime explicitly accounting for broadening of the device energy levels due to molecule-lead coupling.
机译:我们提出了一个理论研究,暴露最近分子旋转晶体管实验的主要显微镜电子传输机制[C. Godfrin等人,ACS Nano 11,3984(2017)],其中达到了基于Tb(III)的单分子磁体的纯电读数。 为了识别能够实现Tb(III)离子4F电子的相反自旋偏振的相关旋转电荷转换机制,以产生不同的磁导响应,我们研究了不相干的顺序隧道电荷传输,以及相干的Cotunneling校正。 与先前的解释援引高度连贯的Kondo运输制度,我们发现所有报道的实验观察,包括差分电导的温度和磁场依赖性,可以合理地在连续的隧道运输方案中明确地核对设备扩大 由于分子引线耦合引起的能量水平。

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