相关实验视频
Updated: Jul 11, 2025

11:21
Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
Published on: March 30, 2017
7.5K
在磁量子相位过渡附近的临界减速与费米离子分解
Chia-Jung Yang1, Kristin Kliemt2, Cornelius Krellner2
1Department of Materials, ETH Zurich, Zurich, Switzerland.
Nature physics
|November 16, 2023
概括
研究人员首次在YbRh2Si2中观察到铁离子激发的关键减速,在量子相位过渡附近. 这一发现挑战了以前关于相位转换期间费米离子行为的假设.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 量子材料是一种量子材料.
- 频谱学是一种光谱学.
背景情况:
- 临界减速是一种接近连续相位过渡的普遍现象,通常在玻色子激发中观察到.
- 由于它们独特的量子力学特性,通常不预计费米离子激发会表现出临界减速.
研究的目的:
- 为了研究量子相位过渡附近的费米离子激发的动力学.
- 探索费米离子系统中临界减速现象,特别是YbRh2Si2.2.
主要方法:
- 太赫兹时域光谱学被用来探测电子动态.
- 分析重子光谱重量和准粒子激发率作为温度的函数.
主要成果:
- 在量子相位过渡附近的YbRh2Si2的费米离子激发中发现了临界减速的证据.
- 观察到重子光谱重量和准粒子激发率的温度依赖性行为.
- 结果表明,在量子相位过渡附近,重费米离子发生了分解.
结论:
- 这项研究提供了第一个关于费米离子临界减速的实验证据.
- 这种现象与量子相位过渡附近的重子分解有关.
- 这些发现可能有助于分类更广泛的尚未探索的费米子量子相位过渡.
相关概念视频
Atomic Nuclei: Nuclear Relaxation Processes
657
In the absence of an external magnetic field, nuclear spin states are degenerate and randomly oriented. When a magnetic field is applied, the spins begin to precess and orient themselves along (lower energy) or against (higher energy) the direction of the field. At equilibrium, a slight excess population of spins exists in the lower energy state. Because the direction of the magnetic field is fixed as the z-axis, the precessing magnetic moments are randomly oriented around the z-axis.
657
Atomic Nuclei: Nuclear Spin State Population Distribution
987
Near absolute zero temperatures, in the presence of a magnetic field, the majority of nuclei prefer the lower energy spin-up state to the higher energy spin-down state. As temperatures increase, the energy from thermal collisions distributes the spins more equally between the two states. The Boltzmann distribution equation gives the ratio of the number of spins predicted in the spin −½ (N−) and spin +½ (N+) states.
987
Phase Transitions
19.1K
Whether solid, liquid, or gas, a substance's state depends on the order and arrangement of its particles (atoms, molecules, or ions). Particles in the solid pack closely together, generally in a pattern. The particles vibrate about their fixed positions but do not move or squeeze past their neighbors. In liquids, although the particles are closely spaced, they are randomly arranged. The position of the particles are not fixed—that is, they are free to move past their neighbors to...
19.1K
Fermi Level Dynamics
257
The vacuum level denotes the energy threshold required for an electron to escape from a material surface. It is usually positioned above the conduction band of a semiconductor and acts as a benchmark for comparing electron energies within various materials.
Electron affinity in semiconductors refers to the energy gap between the minimum of its conduction band and the vacuum level and it is a critical parameter in determining how easily a semiconductor can accept additional electrons.
The work...
Electron affinity in semiconductors refers to the energy gap between the minimum of its conduction band and the vacuum level and it is a critical parameter in determining how easily a semiconductor can accept additional electrons.
The work...
257
Phase Transitions: Melting and Freezing
12.4K
Heating a crystalline solid increases the average energy of its atoms, molecules, or ions, and the solid gets hotter. At some point, the added energy becomes large enough to partially overcome the forces holding the molecules or ions of the solid in their fixed positions, and the solid begins the process of transitioning to the liquid state or melting. At this point, the temperature of the solid stops rising, despite the continual input of heat, and it remains constant until all of the solid is...
12.4K
Magnetic Field due to Moving Charges
8.7K
A stationary charge creates and interacts with the electric field, while a moving charge creates a magnetic field.
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
8.7K

