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Crystallization of charge holes in the spin ladder of Sr14Cu24O41

机译:Sr14Cu24O41自旋阶梯中的电荷孔结晶

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Determining the nature of the electronic phases that compete with superconductivity in high-transition-temperature (high-T-c) superconductors is one of the deepest problems in condensed matter physics. One candidate is the 'stripe' phase(1-3), in which the charge carriers ( holes) condense into rivers of charge that separate regions of antiferromagnetism. A related but lesser known system is the 'spin ladder', which consists of two coupled chains of magnetic ions forming an array of rungs. A doped ladder can be thought of as a high-T-c material with lower dimensionality, and has been predicted to exhibit both superconductivity(4-6) and an insulating 'hole crystal'(4,7,8) phase in which the carriers are localized through many-body interactions. The competition between the two resembles that believed to operate between stripes and superconductivity in high-T-c materials(9). Here we report the existence of a hole crystal in the doped spin ladder of Sr14Cu24O41 using a resonant X-ray scattering technique(10). This phase exists without a detectable distortion in the structural lattice, indicating that it arises from many-body electronic effects. Our measurements confirm theoretical predictions(4,7,8), and support the picture that proximity to charge ordered states is a general property of superconductivity in copper oxides.
机译:确定在高转变温度(high-T-c)超导体中与超导竞争的电子相的性质是凝聚态物理学中最深层的问题之一。一种选择是“条带化”阶段(1-3),其中电荷载流子(空穴)凝结到分隔反铁磁区域的电荷河中。一个相关的但鲜为人知的系统是“自旋梯子”,它由两个耦合的磁离子链组成梯级阵列。可以将掺杂的梯子视为具有较低尺寸的高Tc材料,并且可以预测其同时显示超导电性(4-6)和绝缘的“孔晶体”(4,7,8)相,其中载流子为通过多人互动进行本地化。两者之间的竞争类似于高T-c材料中的条纹和超导之间的竞争(9)。这里我们使用共振X射线散射技术报道了Sr14Cu24O41的自旋阶梯中存在孔晶体(10)。该相存在时在结构晶格中没有可检测到的变形,表明它是由多体电子效应引起的。我们的测量结果证实了理论上的预测(4,7,8),并支持以下观点:接近电荷有序态是氧化铜中超导性的一般性质。

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