论文标题

在基于重度电子LA1111的超导能力下,在低能的高能量下,增强的超导性和中等自旋波动抑制

Enhanced superconductivity and moderate spin fluctuations suppressed at low energies in heavily electron-doped La1111-based superconductor

论文作者

Kouchi, T., Nishioka, S., Suzuki, K., Yashima, M., Mukuda, H., Kawashima, T., Tsuji, H., Kuroki, K., Miyasaka, S., Tajima, S.

论文摘要

为了阐明重新增强高$ t_c $阶段在重型电子掺杂的fe-pnictides中,系统的$^{75} $作为NMR研究进行了对大型电子掺杂的Lafe $ pn $ $ o $ $ $ $ $ _ {0.75} $ _ {0.75} $ _ $ _ {0.25} $ _ {$ _ {$ h $ _ {通过$ pn $(= AS)替换的平面,带有SB或P。核自旋松弛率(1/$ T_1 $)和骑士移位($ k $)的测量表明,高温下高温下的中等自旋波动被抑制在低温下。这种特征性的自旋波动具有差距类似于低能的功能,在较高的$ h_ {pn} $的较高$ t_c $化合物中更加扩大,而这些化合物在具有较低$ h_ {pn} $的非效力的化合物中完全被抑制。这意味着有限能量部分在自旋波动光谱中的贡献对于增强$ t_c $的$ t_c $至关重要。这与许多典型的基于Fe的化合物具有相似大小的孔和电子费米表面相反,在低温下,低能量下的自旋波动在低温下显着发展。与$ d_ {xy} $轨道得出的微弱孔费米表面的特征讨论了泛值状态的特征,当$ h_ {pn} $与增强的电子相关效应一起时,该特征会升高。

To elucidate the origin of re-enhanced high-$T_c$ phase in the heavily electron-doped Fe-pnictides, systematic $^{75}$As NMR studies are performed on heavily electron-doped LaFe$Pn$O$_{0.75}$H$_{0.25}$ by controlling the pnictogen height ($h_{Pn}$) from the Fe plane through the substitution at $Pn$(=As) site with Sb or P. The measurements of nuclear spin relaxation rate (1/$T_1$) and Knight shift ($K$) reveal that the moderate spin fluctuations at high temperatures are suppressed toward low temperatures. Such characteristic spin fluctuations with gap like feature at low energies are more enlarged in higher $T_c$ compounds with higher $h_{Pn}$, while those are totally suppressed in non-superconducting compounds with lower $h_{Pn}$. This implies that the contribution of the finite energy part in the spin fluctuation spectrum is crucial for enhancing $T_c$ in the heavily electron-doped regime. This is in contrast to many cases of typical Fe-based compounds with hole and electron Fermi surfaces of similar sizes, where the spin fluctuations at low energies develop significantly at low temperatures. The features in the heavily electron-doped states are discussed in relation with the characteristics of the faint hole Fermi surface derived from $d_{xy}$ orbital that rises when $h_{Pn}$ is high, together with the enhanced electron correlation effects.

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