论文标题
超导ND0.8SR0.2NIO2镍的光学特性
Optical Properties of Superconducting Nd0.8Sr0.2NiO2 Nickelate
论文作者
论文摘要
由于发现无限层镍的超导率,对替代性非校准高过渡 - 温度($ t_c $)超导体的搜索已取得了积极的转变。预计这一发现将是消除高$ T_C $氧化物物理学背后的难题的基础。为了寻求诱导超导性所必需的物理条件,我们报告了对ND $ _ {0.8} $ SR $ _ {0.2} $ nio $ _2 $胶片的光学研究nd $ _ {0.8} $ sr $ _ {0.2} $ nio $ _2 $,由drude模型描述,其特征是散布时间略高于$ t_c $($τ\ sim 1.7 \ times 10^{ - 14} $ s)和plasma频率$ $ $ $ $ω_p= 8500 $ $ cm $ cm $ cm $ cm $ cm com comprient (mir)大约$ω_0\ sim 4000 $ cm $^{ - 1} $。 miR吸收表明在NIO $ _2 $平面中存在强烈的电子相关效应,类似于蛋白石。低于$ T_C $,使用Mattis-Bardeen模型从Terahertz的反射率中提取了$ \ sim 3.2 $ MEV的超导能量差距($2δ$)。 From the Ferrel-Glover-Thinkam Rule applied to the real part of the optical conductivity, we also estimate a London penetration depth of about 490 nm, in agreement with a type-II superconductivity in Nd$_{0.8}$Sr$_{0.2}$NiO$_2$ Nickelate.
The intensive search for alternative non-cuprate high-transition-temperature ($T_c$) superconductors has taken a positive turn recently with the discovery of superconductivity in infinite layer nickelates. This discovery is expected to be the basis for disentangling the puzzle behind the physics of high $T_c$ in oxides. In the unsolved quest for the physical conditions necessary for inducing superconductivity, we report an optical study of a Nd$_{0.8}$Sr$_{0.2}$NiO$_2$ film measured using optical spectroscopy, at temperatures above and below the critical temperature $T_c\sim 13$ K. The normal-state electrodynamics of Nd$_{0.8}$Sr$_{0.2}$NiO$_2$, is described by the Drude model characterized by a scattering time just above $T_c$ ($τ\sim 1.7\times 10^{-14}$ s) and a plasma frequency $ω_p = 8500$ cm$^{-1}$ in combination with an absorption band in the Mid-Infrared (MIR) around $ω_0 \sim 4000$ cm$^{-1}$. The MIR absorption indicates the presence of strong electronic correlation effect in the NiO$_2$ plane similarly to cuprates. Below $T_c$, a superconducting energy gap ($2Δ$) of $\sim 3.2$ meV is extracted from the Terahertz reflectivity using the the Mattis-Bardeen model. From the Ferrel-Glover-Thinkam Rule applied to the real part of the optical conductivity, we also estimate a London penetration depth of about 490 nm, in agreement with a type-II superconductivity in Nd$_{0.8}$Sr$_{0.2}$NiO$_2$ Nickelate.