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Molecular Quantum Spintronics: Supramolecular Spin Valves Based on Single-Molecule Magnets and Carbon Nanotubes

机译:分子量子自旋电子学:基于单分子磁体和碳纳米管的超分子自旋阀

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摘要

We built new hybrid devices consisting of chemical vapor deposition (CVD) grown carbon nanotube (CNT) transistors, decorated with TbPc2 (Pc = phthalocyanine) rare-earth based single-molecule magnets (SMMs). The drafting was achieved by tailoring supramolecular π-π interactions between CNTs and SMMs. The magnetoresistance hysteresis loop measurements revealed steep steps, which we can relate to the magnetization reversal of individual SMMs. Indeed, we established that the electronic transport properties of these devices depend strongly on the relative magnetization orientations of the grafted SMMs. The SMMs are playing the role of localized spin polarizer and analyzer on the CNT electronic conducting channel. As a result, we measured magneto-resistance ratios up to several hundred percent. We used this spin valve effect to confirm the strong uniaxial anisotropy and the superparamagnetic blocking temperature (TB ~ 1 K) of isolated TbPc2 SMMs. For the first time, the strength of exchange interaction between the different SMMs of the molecular spin valve geometry could be determined. Our results introduce a new design for operable molecular spintronic devices using the quantum effects of individual SMMs.
机译:我们构建了由化学气相沉积(CVD)生长的碳纳米管(CNT)晶体管组成的新型混合器件,并用TbPc2(Pc =酞菁)稀土基单分子磁体(SMM)装饰。通过调整CNT和SMM之间的超分子π-π相互作用来完成起草。磁阻磁滞回线测量显示出陡峭的台阶,这可以与单个SMM的磁化反转有关。确实,我们确定这些设备的电子传输特性在很大程度上取决于接枝SMM的相对磁化方向。 SMM在CNT电子导电通道上起着局部自旋偏振器和分析仪的作用。结果,我们测量了高达数百%的磁阻比。我们使用这种自旋阀效应来确认隔离的TbPc2 SMM的强单轴各向异性和超顺磁性阻断温度(TB〜1 K)。首次可以确定分子自旋阀几何形状的不同SMM之间的交换相互作用强度。我们的结果介绍了一种利用单个SMM的量子效应为可操作的分子自旋电子器件提供的新设计。

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