期刊文献+
共找到3篇文章
< 1 >
每页显示 20 50 100
磁物理量与镜面对称
1
作者 王爱芬 盖志涛 《抚顺石油学院学报》 EI 1998年第1期79-80,共2页
讨论磁物理量与镜面对称之间的关系,得到了矢势A(t)与磁感应强度矢量B(t)的镜面特性。应用镜面对称得到两个有用的定理,将定理应用到具体的电流中,可获得磁场方向,该方法比其它一些方法方便。给出了两个典型实例以说明镜面... 讨论磁物理量与镜面对称之间的关系,得到了矢势A(t)与磁感应强度矢量B(t)的镜面特性。应用镜面对称得到两个有用的定理,将定理应用到具体的电流中,可获得磁场方向,该方法比其它一些方法方便。给出了两个典型实例以说明镜面对称的作用,作法是寻找电流系统的镜面对称,将镜面对称电流分为两个镜面对称电流或反向映象电流,即可应用定理判定磁场。 展开更多
关键词 感应强度矢量 镜面对称 磁物理量
下载PDF
Quantum Theory for Interfacial Roughness and Angle Dependence of Giant Magnetoresistance in Magnetic Multilayers
2
作者 TAOYong-Chun DONGZheng-Chan 《Communications in Theoretical Physics》 SCIE CAS CSCD 2001年第3期355-359,共5页
The giant magnetoresistance (GMR) in magnetic multilayers with current in the plane of the layers is studied by using the quantum-statistical Green's function approach, in which the effects of the interfacial roug... The giant magnetoresistance (GMR) in magnetic multilayers with current in the plane of the layers is studied by using the quantum-statistical Green's function approach, in which the effects of the interfacial roughness and magnetization configuration on the GMR are included. It is shown that the maximal GMR first increases and then decreases with increasing interfacial roughness, exhibiting a peak at an optimum value of interfacial roughness. An approximately linear dependence of GMR on is obtained, where is the angle between magnetizations of the two successive ferromagnetic layers. Furthermore, the maximal GMR is found to increase with increasing the number of bilayers. 展开更多
关键词 giant magnetoresistance interfacial roughness angle dependence Green's function magnetic multilayers
下载PDF
Coulomb Interaction in Quantum Dot with a Precessing Magnetic Field
3
作者 WU Liu-Po ZHOU Shi-Ping SONG Hong-Yan SHI Yao-Ming 《Communications in Theoretical Physics》 SCIE CAS CSCD 2007年第5X期943-948,共6页
We study electronic transport through a quantum dot (QD) with a precessing magnetic field. By using the Keldysh nonequilibrium Green function method, formulas of local density of states (LDOS) and conductance of Q... We study electronic transport through a quantum dot (QD) with a precessing magnetic field. By using the Keldysh nonequilibrium Green function method, formulas of local density of states (LDOS) and conductance of QD are derived self-consistently. It shows that the LDOS and conductance have obvious changes with the Coulomb blockade interaction. The intensity and angle of the magnetic field or temperatures, which reflect the mesoscopic structure of the QD are derived. The superiority of this device is that the QD can be controlled easily by the magnetic field, so it is valuable to apply in generating, manipulating and probing spin state. 展开更多
关键词 Coulomb interaction quantum dot precessing magnetic field
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部