论文标题
nematicity对FESE0.91S0.09在压力下的抗铁磁波动与超导性之间关系的影响
Impact of Nematicity on the Relationship between Antiferromagnetic Fluctuations and Superconductivity in FeSe0.91S0.09 Under Pressure
论文作者
论文摘要
硫取代的FESE系统,FESE $ _ {1-x} $ s $ _ {x} $,提供了一个多功能平台,用于研究nematicity,抗fiferromagnetism和超导性之间的关系。在这里,通过核磁共振(NMR)和电阻率测量,最高为4.73 GPA $ _ {0.91} $ s $ _ {0.09} $,我们确定了压力($ p $) - 温度($ p $) - 温度($ t $)阶段图,nematic态抑制了nematic sudions nematic sce nematic量子量的nematic量子量($ pep)。通过QPT,出现和抗铁磁(AFM)阶段出现在$ \ sim $ 3.3 GPA以上。从NMR的结果到2.1 GPA,AFM波动的特征是条带型波形,这在两个SC区域保持不变。此外,发现电子状态的特征从非弗尔米液体变为列前QPT周围的费米液体,并持续到$ \ sim $ 2.1 GPA。此外,尽管AFM波动与两个SC状态下的$ t _ {\ rm c} $相关,这证明了AFM波动对于系统中SC出现的重要性,但我们发现,当不存在nematorative时,$ t _ {\ rm c} $与afm fluctuations $ n nemer clim clim clim clim clim clim clim compy。当存在列表时,取决于AFM波动。我们对FESE $ _ {0.91} $ s $ _ {0.09} $的发现被证明应用于整个FESE $ _ {1-x} $ s $ _ {x} $系统,还为基于Fe的FE MADDOCCODUCTORS中的AFM波动和SC之间的关系提供了新的洞察力。
The sulfur substituted FeSe system, FeSe$_{1-x}$S$_{x}$, provides a versatile platform for studying the relationship between nematicity, antiferromagnetism, and superconductivity. Here, by nuclear magnetic resonance (NMR) and resistivity measurements up to 4.73 GPa on FeSe$_{0.91}$S$_{0.09}$, we established the pressure($p$)-temperature($T$) phase diagram in which the nematic state is suppressed with pressure showing a nematic quantum phase transition (QPT) around $p$ = 0.5 GPa, two SC regions, separated by the QPT, appear and antiferromagnetic (AFM) phase emerges above $\sim$3.3 GPa. From the NMR results up to 2.1 GPa, AFM fluctuations are revealed to be characterized by the stripe-type wavevector which remains the same for the two SC regions. Furthermore, the electronic state is found to change in character from non-Fermi liquid to Fermi liquid around the nematic QPT and persists up to $\sim$ 2.1 GPa. In addition, although the AFM fluctuations correlate with $T_{\rm c}$ in both SC states, demonstrating the importance of the AFM fluctuations for the appearance of SC in the system, we found that, when nematic order is absent, $T_{\rm c}$ is strongly correlated with the AFM fluctuations, whereas $T_{\rm c}$ weakly depends on the AFM fluctuations when nematic order is present. Our findings on FeSe$_{0.91}$S$_{0.09}$ were shown to be applied to the whole FeSe$_{1-x}$S$_{x}$ system and also provide a new insight into the relationship between AFM fluctuations and SC in Fe-based superconductors.