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首页> 外文期刊>Physical Review, B. Condensed Matter >Critical points in the macroscopic magnetotransport of normal conductor/perfect insulator/perfect conductor disordered composites - art. no. 024412
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Critical points in the macroscopic magnetotransport of normal conductor/perfect insulator/perfect conductor disordered composites - art. no. 024412

机译:正常导体/完美绝缘体/完美导体无序复合材料宏观磁输运中的关键点-艺术没有。 024412

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摘要

The magnetotransport in a disordered composite medium, made of normal conductor, perfect insulator, and perfect conductor constituents, exhibits singular or critical point behavior at certain compositions, in the limit where the Hall conductivity of the normal constituent is much greater than its transverse Ohmic conductivity, but much less than its longitudinal Ohmic conductivity, e.g., if that constituent is an isotropic conductor and omega (c)tau much greater than1. At those compositions the asymptotic behavior of the macroscopic Ohmic resistivity changes abruptly from saturating to nonsaturating dependence upon omega (c)tau. Near those compositions, the magnetotransport exhibits a characteristic scaling behavior. A different critical behavior is exhibited near those same compositions even when the Hall conductivity is negligible, but the longitudinal transverse Ohmic conductivity (i.e., along the magnetic-field direction) is much greater than the transverse Ohmic conductivity. In three-dimensional microstructures, both types of critical points are related to the phenomenon of anisotropic percolation. In two-dimensional or columnar microstructures, the location and character of the critical point depend on the direction of the magnetic field with respect to the columnar axis. Self-consistent effective-medium approximations are employed to discuss these critical points for two-dimensional as well as fur three-dimensional microstructures. [References: 22]
机译:由正常导体,理想绝缘体和理想导体成分组成的无序复合介质中的磁输运在某些成分下表现出奇点或临界点行为,在极限范围内正常成分的霍尔电导率远大于其横向欧姆电导率,但远小于其纵向欧姆电导率,例如,如果该成分是各向同性导体,并且欧米伽(c)tau远大于1。在这些成分下,宏观欧姆电阻率的渐近行为突然从对ω(c)tau的饱和依赖关系变为非饱和依赖关系。在那些成分附近,磁传输表现出特征性的缩放行为。即使霍尔电导率可以忽略不计,在那些相同的成分附近也会表现出不同的临界行为,但纵向横向欧姆电导率(即沿磁场方向)远大于横向欧姆电导率。在三维微观结构中,两种类型的临界点都与各向异性渗滤现象有关。在二维或柱状微结构中,临界点的位置和特征取决于磁场相对于柱状轴的方向。使用自洽的有效介质近似值来讨论二维以及三维三维结构的这些临界点。 [参考:22]

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