论文标题
BI $ _ {2} $ sr $ _ {2} $ CUO $ _ {6+δ} $ cuprates的奇怪的金属动力学
Strange metal dynamics across the phase diagram of Bi$_{2}$Sr$_{2}$CuO$_{6+δ}$ cuprates
论文作者
论文摘要
解锁奇怪金属状态的奥秘已成为高t $ _ {C} $研究的焦点,不是因为它对超导性的重要性,而是因为它似乎代表了一个真正的新颖阶段,被称为“量子至高无上”。最初通过高磁场检测到的运输实验,该阶段的特征已被各种探针发现。我们的高分辨率光学数据的低t $ _ {c} $ cuprate超导体,bi $ _ {2-x} $ pb $ _ {x} $ sr $ _ {2-y} $ la $ _ {y} $ _ {y} $ co $ $ _ {6+δ} $可以使我们可以探索这个阶段和大型窗口。我们证明了奇怪金属相的光学特征在整个相图中持续存在。光导率中的奇怪金属签名为两倍,(i):低能响应,温度顺序和(ii):高能量保形的尾巴,具有掺杂依赖的幂律指数。虽然干燥的重量在研究的整个掺杂范围内单调地演变,但高能量保形尾部中包含的光谱重量似乎是兴奋剂的,并且温度无关。我们的分析进一步表明,光导率的温度依赖性完全由DRUDE参数确定。我们的结果表明,超导圆顶内部没有关键的掺杂水平,其中载体密度开始发生巨大变化,并且先前观察到的“返回正常”是Drude分量相对于保形尾巴与掺杂相结合的尾巴的重要性的结果。重要的是,电阻率的掺杂和温度依赖性在很大程度上取决于drude宽度。
Unlocking the mystery of the strange metal state has become the focal point of high T$_{c}$ research, not because of its importance for superconductivity, but because it appears to represent a truly novel phase of matter dubbed `quantum supreme matter'. Detected originally through high magnetic field, transport experiments, signatures of this phase have now been uncovered with a variety of probes. Our high resolution optical data of the low T$_{c}$ cuprate superconductor, Bi$_{2-x}$Pb$_{x}$Sr$_{2-y}$La$_{y}$CuO$_{6+δ}$ allows us to probe this phase over a large energy and temperature window. We demonstrate that the optical signatures of the strange metal phase persist throughout the phase diagram. The strange metal signatures in the optical conductivity are two-fold, (i): a low energy Drude response with Drude width on the order of temperature and (ii): a high energy conformal tail with doping dependent power-law exponent. While the Drude weight evolves monotonously throughout the entire doping range studied, the spectral weight contained in the high energy conformal tail appears to be doping and temperature independent. Our analysis further shows that the temperature dependence of the optical conductivity is completely determined by the Drude parameters. Our results indicate that there is no critical doping level inside the superconducting dome where the carrier density starts to change drastically and that the previously observed 'return to normalcy' is a consequence of the increasing importance of the Drude component relative to the conformal tail with doping. Importantly, both the doping and temperature dependence of the resistivity are largely determined by the Drude width.