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Anomalous transport and possible phase transition in palladium nanojunctions

机译:钯纳米结中的异常传输和可能的相变

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摘要

Many phenomena in condensed matter are thought to result from competition between different ordered phases. Palladium is a paramagnetic metal close to both ferromagnetism and superconductivity and is, therefore, a potentially interesting material to consider. Nanoscale structuring of matter can modify relevant physical energy scales, leading to effects such as locally modified magnetic interactions. We present transport measurements in electromigrated palladium break junction devices showing the emergence at low temperatures of anomalous sharp features in the differential conductance. These features appear symmetrically in applied bias and exhibit a temperature dependence of their characteristic voltages reminiscent of a mean-field phase transition. The systematic variation of these voltages with zero bias conductance, together with density functional theory calculations illustrating the relationship between the magnetization of Pd and atomic coordination, suggests that the features may result from the onset of spontaneous magnetization in the nanojunction electrodes. We propose that the characteristic conductance features are related to inelastic tunneling involving magnetic excitations.
机译:凝聚态中的许多现象被认为是由于不同有序相之间的竞争而产生的。钯是一种接近铁磁性和超导性的顺磁性金属,因此,是一种可能令人感兴趣的材料。物质的纳米级结构化可以改变相关的物理能级,从而导致诸如局部改变的磁相互作用之类的效应。我们目前在电迁移的钯断裂连接器件中的传输测量结果表明,在低温下出现了差分电导中异常尖锐特征的出现。这些特征在施加的偏置中对称出现,并且表现出其特征电压的温度依赖性,这让人联想到平均场相变。这些电压的零偏差电导率的系统变化,再加上密度泛函理论计算说明了Pd磁化与原子配位之间的关系,表明这些特征可能是由于纳米结电极中的自发磁化所致。我们提出特征电导特征与涉及磁激励的非弹性隧穿有关。

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