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首页> 外文期刊>International Journal of Modern Physics, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Magnetism, phonons and anisotropy of high temperature cuprates superconductors
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Magnetism, phonons and anisotropy of high temperature cuprates superconductors

机译:高温铜酸盐超导体的磁,声子和各向异性

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摘要

Phonon or electron mediated weak BCS attraction is enough to have high critical temperature if a van Hove anomaly is at work. This could apply to electron doped compounds and also to compounds with CuO2 planes overdoped in holes, where T, decreases with increasing doping. If phonons dominate, it should lead to an anisotropic but mainly s superconductive gap, as observed recently in overdoped LaSrCuO1 and probably also in electron doped compounds. If electrons dominate, a d-gap should develop as observed in a number of cases. In the underdoped range, the observed decrease of T-c with hole doping can be related in all cases to the development of antiferromagnetic fluctuations which produces a magnetic pseudogap, thus lowering the density of states at the Fermi level. The observed mainly d-superconductive gap then can be due to a prevalent superconductive coupling through antiferromagnetic fluctuations; it could also possibly be attributed to the same phonon coupling as in the overdoped range, now acting on Bloch functions scattered in tile magnetic pseudogap. More systematic studies of superconductive gap anisotropy and of magnetic fluctuations would be in order. [References: 37]
机译:如果发生范霍夫异常,声子或电子介导的弱BCS吸引力足以使其具有较高的临界温度。这可能适用于掺杂电子的化合物,也适用于空穴中掺杂有CuO2平面的化合物,其中T随着掺杂的增加而降低。如果声子占主导地位,这将导致各向异性,但主要是超导间隙,正如最近在过量掺杂的LaSrCuO1和电子掺杂化合物中观察到的那样。如果电子占主导地位,则在许多情况下都应出现d间隙。在掺杂不足的范围内,在所有情况下观察到的空穴掺杂引起的T-c降低都可能与反铁磁涨落的产生有关,后者会产生磁伪间隙,从而降低了费米能级的态密度。那么,观察到的主要是d超导间隙可能是由于反铁磁波动引起的超导耦合。它也可能归因于与超掺杂范围内的声子耦合,现在作用在散布在磁伪间隙中的Bloch函数上。将对超导间隙各向异性和磁涨落进行更系统的研究。 [参考:37]

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