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Pressure-decoupled magnetic and structural transitions of the parent compound of iron-based 122 superconductors BaFe2As2

机译:铁基122超导体BaFe2As2母体化合物的压力解耦磁性和结构转变

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摘要

The recent discovery of iron ferropnictide superconductors has received intensive concern in connection with magnetically involved superconductors. Prominent features of ferropnictide superconductors are becoming apparent: the parent compounds exhibit an antiferromagnetic ordered spin density wave (SDW) state, the magnetic-phase transition is always accompanied by a crystal structural transition, and superconductivity can be induced by suppressing the SDW phase via either chemical doping or applied external pressure to the parent state. These features generated considerable interest in the interplay between magnetism and structure in chemically doped samples, showing crystal structure transitions always precede or coincide with magnetic transition. Pressure-tuned transition, on the other hand, would be more straightforward to superconducting mechanism studies because there are no disorder effects caused by chemical doping; however, remarkably little is known about the interplay in the parent compounds under controlled pressure due to the experimental challenge of in situ measuring both of magnetic and crystal structure evolution at high pressure and low temperatures. Here we show from combined synchrotron Mössbauer and X-ray diffraction at high pressures that the magnetic ordering surprisingly precedes the structural transition at high pressures in the parent compound BaFe2As2, in sharp contrast to the chemical-doping case. The results can be well understood in terms of the spin fluctuations in the emerging nematic phase before the long-range magnetic order that sheds light on understanding how the parent compound evolves from a SDW state to a superconducting phase, a key scientific inquiry of iron-based superconductors.
机译:铁亚铁氰化物超导体的最新发现已引起与磁性超导体有关的广泛关注。亚铁氰化物超导体的显着特征变得显而易见:母体化合物表现出反铁磁有序自旋密度波(SDW)状态,磁相转变始终伴随着晶体结构转变,并且可以通过抑制SDW相来诱导超导性,方法是:化学掺杂或施加外部压力至母体状态。这些特征引起了人们对化学掺杂样品中磁性与结构之间相互作用的极大兴趣,表明晶体结构转变总是先于磁性转变或与磁性转变同时发生。另一方面,由于没有化学掺杂引起的无序效应,压力调节的过渡对于超导机理研究将更简单。然而,由于在高压和低温下原位测量磁性和晶体结构演变的实验挑战,对于在受控压力下母体化合物之间的相互作用知之甚少。在这里,我们从同步加速器Mössbauer和高压X射线衍射的结果表明,母体化合物BaFe2As2在高压下的磁序出乎意料地先于结构转变,这与化学掺杂的情况形成了鲜明的对比。可以根据远距离磁阶之前出现的向列相的自旋涨落来很好地理解结果,这有助于了解母体化合物如何从SDW态演变成超导相,这是对铁-基础的超导体。

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