在无间隙超导体中非传统的霍尔效应:横向超流从正常电流转换为横向超流
Miaomiao Wei1, Longjun Xiang1, Fuming Xu1,2
1Shenzhen University, College of Physics and Optoelectronic Engineering, Shenzhen 518060, China.
Physical review letters
|October 31, 2025
概括
研究人员在无间隙超导体中发现了一种新的超导霍尔效应 (ScHE). 这种效应将纵向电流转化为横向超流,没有相位过渡,为无散射电子提供了新的途径.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 材料科学 材料科学 材料科学
- 量子现象是一种量子现象.
背景情况:
- 在接近的正常金属中,超导状态表现出异构的无间隙行为.
- 分段费米表面是这些无间隙超导状态的特征.
研究的目的:
- 为了研究无间隙超导体中的非传统的霍尔效应.
- 为了证明超导霍尔效应 (ScHE) 的存在和起源.
主要方法:
- 散装系统的热力学方法.
- 量子运输理论用于四探头设置.
- 准粒子贝里曲率的分析.
主要成果:
- 一个非常规的霍尔效应,ScHE,在无间隙超导体中得到了证明.
- 纵向准粒子电流被转换成横向超电流,没有相位过渡.
- ScHE起源于准粒子贝里曲率.
结论:
- ScHE是无间隙超导体的内在特性,由它们的异构相启用.
- 建议使用Bi_{2}Te_{3}/NbSe_{2}等材料和改变磁性的异构结构进行实验验证.
相关概念视频
The Hall Effect
4.0K
Edwin H. Hall, in the year 1879, devised an experiment that could be used to identify the polarity of the predominant charge carriers in a conducting material. From a historical perspective, this experiment was the first to demonstrate that the charge carriers in most metals are negative.
4.0K
Superconductor
1.7K
A substance that reaches superconductivity, a state in which magnetic fields cannot penetrate, and there is no electrical resistance, is referred to as a superconductor. In 1911, Heike Kamerlingh Onnes of Leiden University, a Dutch physicist, observed a relation between the temperature and the resistance of the element mercury. The mercury sample was then cooled in liquid helium to study the linear dependence of resistance on temperature. It was observed that, as the temperature decreased, the...
1.7K
Types Of Superconductors
1.6K
A superconductor is a substance that offers zero resistance to the electric current when it drops below a critical temperature. Zero resistance is not the only interesting phenomenon as materials reach their transition temperatures. A second effect is the exclusion of magnetic fields. This is known as the Meissner effect. A light, permanent magnet placed over a superconducting sample will levitate in a stable position above the superconductor. High-speed trains that levitate on strong...
1.6K
Magnetic Force Between Two Parallel Currents
4.5K
Two long, straight, and parallel current-carrying conductors exert a force of equal magnitude on one another. The direction of the force depends on the current direction in the conductors.
The force exerted by the magnetic field due to the first conductor over a finite length of the second conductor is given as the product of the current in the second conductor and the vector product of the length vector along the current element and the field due to the first conductor. According to the...
The force exerted by the magnetic field due to the first conductor over a finite length of the second conductor is given as the product of the current in the second conductor and the vector product of the length vector along the current element and the field due to the first conductor. According to the...
4.5K
Electric Field Inside a Conductor
7.2K
When a conductor is placed in an external electric field, the free charges in the conductor redistribute and very quickly reach electrostatic equilibrium. The resulting charge distribution and its electric field have many interesting properties, which can be investigated with the help of Gauss's law.
Suppose a piece of metal is placed near a positive charge. The free electrons in the metal are attracted to the external positive charge and migrate freely toward that region. This region then...
Suppose a piece of metal is placed near a positive charge. The free electrons in the metal are attracted to the external positive charge and migrate freely toward that region. This region then...
7.2K
Magnetic Force On A Current-Carrying Conductor
4.8K
Moving charges experience a force in a magnetic field. Since the magnetic fields produced by moving charges are proportional to the current, a conductor carrying a current creates a magnetic field around it.
Consider a compass placed near a current-carrying wire. The wire experiences a force that aligns the needle of the compass tangentially around the wire. Thus, the current-carrying wire produces concentric circular loops of magnetic field. The magnetic field generated by a wire can be...
Consider a compass placed near a current-carrying wire. The wire experiences a force that aligns the needle of the compass tangentially around the wire. Thus, the current-carrying wire produces concentric circular loops of magnetic field. The magnetic field generated by a wire can be...
4.8K


