相关实验视频
Updated: May 4, 2026

06:53
Scanning SQUID Study of Vortex Manipulation by Local Contact
Published on: February 1, 2017
6.5K
在强烈相互作用的费米气体中,螺旋和超流动性
M W Zwierlein1, J R Abo-Shaeer, A Schirotzek
1Department of Physics, MIT-Harvard Center for Ultracold Atoms, and Research Laboratory of Electronics, MIT, Cambridge, Massachusetts 02139, USA.
Nature
|June 24, 2005
概括
研究人员在旋转的费米气体中观察到状格子,提供了超流动性的明确证据. 量子退化费米气体的这一突破为高温超导体提供了洞察力.
科学领域:
- 量子物理学的量子物理学
- 凝聚物质物理学 凝聚物质物理学
- 原子物理 原子物理
背景情况:
- 量子退化费米气体允许研究强烈相互作用的费米子.
- 以前的实验显示了费米离子对凝结,表明了超流动性,但缺乏明确的证据.
- 控制费米子相互作用是理解新出现的量子现象的关键.
研究的目的:
- 在强烈相互作用的费米气体中提供超流体行为的明确证据.
- 探索分子斯-爱因斯坦凝聚物和巴丁-库珀-施里弗超流体之间的交叉.
- 为了研究受控相互作用在新兴超流动性中的作用.
主要方法:
- 使用-6 (6Li) 原子的量子退化费米气体.
- 使用外部磁场控制费米离子相互作用强度在Feshbach共振附近.
- 诱导费米气体的旋转,观察状格子的形成.
主要成果:
- 在强烈相互作用,旋转的费米气体中观察稳定的状网.
- 确切的实验证据证实了这个系统的超流动性.
- 从分子 BEC 到 BCS 超流动性的交叉证明.
结论:
- 状网的形成提供了强烈相互作用的费米气体中超流动性的确证据.
- 这项研究弥合了理论预测和费米子超流动性的实验观测之间的差距.
- 这些发现提供了对高过渡温度超导背后的机制的潜在见解.
相关概念视频
Real Gases: Effects of Intermolecular Forces and Molecular Volume Deriving Van der Waals Equation
30.7K
Thus far, the ideal gas law, PV = nRT, has been applied to a variety of different types of problems, ranging from reaction stoichiometry and empirical and molecular formula problems to determining the density and molar mass of a gas. However, the behavior of a gas is often non-ideal, meaning that the observed relationships between its pressure, volume, and temperature are not accurately described by the gas laws.
30.7K
Phase Transitions: Vaporization and Condensation
16.9K
The physical form of a substance changes on changing its temperature. For example, raising the temperature of a liquid causes the liquid to vaporize (convert into vapor). The process is called vaporization—a surface phenomenon. Vaporization occurs when the thermal motion of the molecules overcome the intermolecular forces, and the molecules (at the surface) escape into the gaseous state. When a liquid vaporizes in a closed container, gas molecules cannot escape. As these gas phase...
16.9K
Intermolecular Forces in Solutions
30.5K
The formation of a solution is an example of a spontaneous process, a process that occurs under specified conditions without energy from some external source.
When the strengths of the intermolecular forces of attraction between solute and solvent species in a solution are no different than those present in the separated components, the solution is formed with no accompanying energy change. Such a solution is called an ideal solution. A mixture of ideal gases (or gases such as helium and argon,...
When the strengths of the intermolecular forces of attraction between solute and solvent species in a solution are no different than those present in the separated components, the solution is formed with no accompanying energy change. Such a solution is called an ideal solution. A mixture of ideal gases (or gases such as helium and argon,...
30.5K
First Law: Particles in Two-dimensional Equilibrium
14.3K
Recall that a particle in equilibrium is one for which the external forces are balanced. Static equilibrium involves objects at rest, and dynamic equilibrium involves objects in motion without acceleration; but it is important to remember that these conditions are relative. For instance, an object may be at rest when viewed from one frame of reference, but that same object would appear to be in motion when viewed by someone moving at a constant velocity.
Newton's first law tells us about...
Newton's first law tells us about...
14.3K
Kinetic Theory of an Ideal Gas
3.5K
A mole is defined as the amount of any substance that contains as many molecules as there are atoms in exactly 12 grams of carbon-12. An Italian scientist Amedeo Avogadro (1776–1856) formed the hypothesis that equal volumes of gas at equal pressure and temperature contain equal numbers of molecules, independent of the type of gas. Later, the hypothesis was developed to form the SI unit for measuring the amount of any substance.
The number of molecules in one mole is called...
The number of molecules in one mole is called...
3.5K
Fermi Level Dynamics
1.1K
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...
1.1K

