Jove
Visualize
联系我们
JoVE
x logofacebook logolinkedin logoyoutube logo
关于 JoVE
概览领导团队博客JoVE 帮助中心
作者
出版流程编辑委员会范围与政策同行评审常见问题投稿
图书馆员
用户评价订阅访问资源图书馆顾问委员会常见问题
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experiments存档
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教师资源中心教师网站
使用条款与条件
隐私政策
政策

相关概念视频

Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

363
Atomization, converting samples into gas-phase atoms and ions, is essential for atomic spectroscopy. The flame temperature required for atomization affects the efficiency of the atomic spectroscopic methods by increasing the atomization efficiency and the relative population of the excited and ground states.
At thermal equilibrium, the relative populations of excited and ground state atoms can be estimated using the Maxwell–Boltzmann distribution. For example, an increase in temperature...
363
Quantifying Heat02:46

Quantifying Heat

54.7K
Thermal Energy Microscopically, thermal energy is the kinetic energy associated with the random motion of atoms and molecules. Temperature is a quantitative measure of “hot” or “cold”, which depends on the amount of thermal energy. When the atoms and molecules in an object are moving or vibrating quickly, they have a higher average kinetic energy (KE) (or higher thermal energy), and the object is perceived as “hot”, or it is described as being at a...
54.7K
Heat Capacities of an Ideal Gas III01:25

Heat Capacities of an Ideal Gas III

2.2K
The number of independent ways a gas molecule can move along straight line, rotate, and vibrate is called its degrees of freedom. Supposing d represents the number of degrees of freedom of an ideal gas, the molar heat capacity at constant volume of an ideal gas in terms of d is
2.2K
Heat Capacities of an Ideal Gas II01:23

Heat Capacities of an Ideal Gas II

2.4K
For a system that undergoes a thermodynamic process at a constant volume condition, the heat absorbed is used only to increase the system's internal energy and not for doing any kind of work. While for a system undergoing a thermodynamic process under a constant pressure condition, the amount of heat absorbed is used not only for increasing the internal energy (as a function of temperature) but also for doing some work. The molar heat capacity is the amount of heat required to increase the...
2.4K
Heat Capacities of an Ideal Gas I01:14

Heat Capacities of an Ideal Gas I

2.7K
Heat capacity is the ratio of heat absorbed by the substance corresponding to its temperature change. It is also called thermal capacity and the SI unit of heat capacity is J/K. Whereas, specific heat capacity is defined as the amount of heat necessary to change the temperature of 1 kg of a substance by 1 K and is also called massic heat capacity. Its SI unit is J/kg⋅K.
Molar heat capacity quantifies the ratio of the amount of heat added (or removed) to increase (or decrease) the...
2.7K
Atomic Nuclei: Nuclear Spin State Population Distribution01:14

Atomic Nuclei: Nuclear Spin State Population Distribution

1.0K
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.
1.0K

您也可能阅读

相关文章

通过共同作者、期刊和引用图与本文相关的文章。

排序
Same author

Efficient production of sodium Bose-Einstein condensates in a hybrid trap.

The Review of scientific instruments·2025
Same author

The Rayleigh-Taylor instability in a binary quantum fluid.

Science advances·2025
Same author

Many-body phases from effective geometrical frustration and long-range interactions in a subwavelength lattice.

Communications physics·2025
Same author

Machine-learning enhanced dark soliton detection in Bose-Einstein condensates.

Machine learning: science and technology·2023
Same author

Self-Bayesian aberration removal via constraints for ultracold atom microscopy.

Physical review research·2023
Same author

Dynamical instability of 3D stationary and traveling planar dark solitons.

Journal of physics. Condensed matter : an Institute of Physics journal·2022

相关实验视频

Updated: Jul 16, 2025

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

7.5K

在斯-爱因斯坦冷凝物中,微弱测量诱导的加热.

Emine Altuntaş1, I B Spielman1

  • 1Joint Quantum Institute, National Institute of Standards and Technology, and University of Maryland, Gaithersburg, Maryland 20899, USA.

Physical review research
|September 18, 2023
PubMed
概括

超冷原子揭示了激光探测的量子反作用. 研究人员量化了能量沉积,并确定了加热/损失来源,根据激光脱调发现了差异.

科学领域:

  • 原子物理 原子物理
  • 量子光学就是量子光学.
  • 多体系统是多体系统.

背景情况:

  • 超冷原子,特别是斯-爱因斯坦凝结体,作为研究系统-储动态的优秀模型.
  • 量子测量过程可以诱导反作用,改变被测量的系统的状态.

研究的目的:

  • 为了实验量化超冷原子波斯-爱因斯坦凝聚物与探头激光相互作用中的量子反作用.
  • 为了识别和描述由这种相互作用产生的加热和损失的来源.

主要方法:

  • 使用超冷的原子斯-爱因斯坦凝聚物和远距离共振探头激光.
  • 实验测量沉积的能量以量化反作用.
  • 将系统与环境的相互作用建模为一个通用的马科维亚水库.
  • 分析激光解调的功能的加热和损失率.

主要成果:

  • 量子反作用在实验中用储存的能量来量化.
  • 确定了两个主要的加热和损失来源:迷路光学格子和探测器诱导的光辅助碰撞.
  • 发现加热和损失率取决于激光调节,蓝色调节比红色调节的速度更高.
  • 红色解调显示了解调时的振荡行为,其特点是分子共振的损失增加和它们之间的损失减少.

更多相关视频

Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere
08:52

Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere

Published on: April 30, 2018

8.2K
High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
09:01

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings

Published on: April 16, 2017

7.8K

相关实验视频

Last Updated: Jul 16, 2025

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

7.5K
Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere
08:52

Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere

Published on: April 30, 2018

8.2K
High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
09:01

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings

Published on: April 16, 2017

7.8K

结论:

  • 该研究提供了超冷原子系统中量子反作用的实验量化.
  • 了解和减轻受试验参数影响的加热和损失,如解调和迷路场,对于利用这些系统至关重要.
  • 这些发现有助于更广泛地了解系统-储动力学和多体系统中的量子测量.