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首页> 外文期刊>Physical Review, B. Condensed Matter >Microscopic theory of weak pseudogap behavior in the underdoped cuprate superconductors: General theory and quasiparticle properties
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Microscopic theory of weak pseudogap behavior in the underdoped cuprate superconductors: General theory and quasiparticle properties

机译:掺杂不足的铜酸盐超导体中弱拟间隙行为的微观理论:一般理论和准粒子性质

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We use a solution of the spin fermion model which is valid in the quasistatic limit pi T much greater than omega(sf), found in the intermediate (pseudoscaling) regime of the magnetic phase diagram of cuprate superconductors, to obtain results for the temperature and doping dependence of the single particle spectral density, the electron-spin fluctuation vertex function, and the low frequency dynamical spin susceptibility. The resulting strong anisotropy of the spectral density and the vertex function lead to the qualitatively different behavior of hot [around k=(pi,0)] and cold [around k=(pi/2, pi/2)] quasiparticles seen in ARPES experiments. We find that the broad high energy features found in ARPES measurements of the spectral density of the underdoped cuprate super conductors are determined by strong antiferromagnetic (AF) correlations and incoherent precursor effects of an SDW state, with reduced renormalized effective coupling constant. Due to this transfer of spectral weight to higher energies; the low frequency spectral weight of hot states is strongly reduced but couples very strongly to the spin excitations of the system. For realistic values of the antiferromagnetic correlation length, their Fermi surface changes its general shape only slightly but the strong scattering of hot states makes the Fermi surface crossing invisible above a pseudogap temperature T-*. The electron spin-fluctuation vertex function, i.e., the effective interaction of low energy quasiparticles and spin degrees of freedom, is found to be strongly anisotropic and enhanced for hot quasiparticles; the corresponding charge-fluctuation vertex is considerably diminished. We thus demonstrate that, once established, strong AF correlations act to reduce substantially the effective electron-phonon coupling constant in cuprate superconductors. [S0163-1829(99)01421-6]. [References: 56]
机译:我们使用自旋费米子模型的一种解决方案,该解决方案在准静态极限pi T远大于omega(sf)(在铜酸盐超导体的磁相图的中间(伪缩放)状态中发现)有效,以获得温度和温度的结果。单粒子光谱密度,电子自旋涨落顶点函数和低频动态自旋磁化率的掺杂依赖性。产生的光谱密度和顶点函数的强各向异性导致在ARPES中看到的热[大约k =(pi,0)]和冷[大约k =(pi / 2,pi / 2)]准粒子在质量上有不同的行为实验。我们发现,在ARPES测量中,掺杂不足的铜酸盐超导体的光谱密度中发现的宽泛的高能量特征,是由强反铁磁(AF)相关性和SDW状态的非相干前体效应确定的,并具有降低的归一化有效耦合常数。由于频谱重量转移到更高的能量;热态的低频频谱权重大大降低,但与系统的自旋激发非常强耦合。对于反铁磁相关长度的实际值,其费米表面仅略微改变其一般形状,但热态的强散射使费米表面在伪间隙温度T- *以上交叉不可见。发现电子自旋涨落的顶点函数,即低能准粒子的有效相互作用和自旋自由度,强烈各向异性并且对于热准粒子增强。相应的电荷波动顶点大大减少了。因此,我们证明,一旦建立,强大的AF相关性就可以降低铜酸盐超导体中的有效电子-声子耦合常数。 [S0163-1829(99)01421-6]。 [参考:56]

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