论文标题

通过红外和光发射光谱观察到的库层的电子孔对称性

Electron-hole symmetry in quasiparticle spectral weight of cuprates observed via infrared and photoemission spectroscopy

论文作者

Lee, Myounghoon, Song, Dongjoon, Seo, Yu-Seong, Roh, Seulki, Lee, Seokbae, Eisaki, Hirosh, Hwang, Jungseek

论文摘要

我们对Pr $ _ {0.85} $ lace $ _ {0.15} $ cuo $ _ {4-Δ} $(PLCCO)的单晶进行了一项光谱研究,以重新审视电子孔不对称性,这已被理解为蛋糕生物的基本特性。制备了四个不同的退火样品 - 生长,还原,最佳氧合和过氧的样品,它们分别具有超导性过渡温度,分别为$ t_c $ = 0、15、24和18 K。我们观察到,与其他电子掺杂的库酸酯家族相比,所有PLCCO样品的低能准粒子光谱重量都显着很小。取而代之的是,它们与孔掺杂的la $ _ {2-x} $ sr $ _x $ cuo $ _4 $(LSCO)相当接近。因此,尽管它们的临界温度相对较高,但超导样品的估计有效载体号($ n _ {\ mathrm {eff}} $/cu)也很小。补充光发性研究表明,PLCCO的低能量准粒子光谱重量远小于nd $ _ {1.85} $ ce $ _ {0.15} $ cuo $ _ {4-Δ} $(NCCO)的零件量。我们的观察结果表明,PLCCO在准片段光谱重量中提供了电子孔对称性,并强调了Cu3 $ d $ -O2 $ P $ P $杂交的重要性,以了解掺杂蛋糕中低能的光谱传递。

We performed an optical spectroscopy study on single crystals of Pr$_{0.85}$LaCe$_{0.15}$CuO$_{4-δ}$ (PLCCO) to revisit the electron-hole asymmetry, which has been understood as a fundamental property of cuprates. Four differently annealed samples - as-grown, reduced, optimally oxygenated, and over-oxygenated samples - were prepared, which have superconducting transition temperatures, $T_c$ = 0, 15, 24, and 18 K, respectively. We observed that low-energy quasiparticle spectral weights of all the PLCCO samples are significantly small in comparison with those of other electron-doped cuprate families. Instead, they are rather close to those of hole-doped counterpart La$_{2-x}$Sr$_x$CuO$_4$ (LSCO). Accordingly, estimated effective carrier numbers per Cu atom ($N_{\mathrm{eff}}$/Cu) of superconducting samples are also considerably small, despite their relatively high critical temperatures. Complementary photoemission study reveals that the low-energy quasiparticle spectral weight of PLCCO is much smaller than that of Nd$_{1.85}$Ce$_{0.15}$CuO$_{4-δ}$ (NCCO), consistent with the optical results. Our observations demonstrate that PLCCO provides the electron-hole symmetry in quasiparticle spectral weight, and highlight the importance of Cu3$d$-O2$p$ hybridization to understand the low-energy spectral weight transfer in doped cuprates.

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