FINESS 2009 (Finite Temperature Non-Equilibrium Superfluid Systems)
FINESS 2009(有限温度非平衡超流体系统)
基本信息
- 批准号:EP/H018093/1
- 负责人:
- 金额:$ 2.46万
- 依托单位:
- 依托单位国家:英国
- 项目类别:Research Grant
- 财政年份:2009
- 资助国家:英国
- 起止时间:2009 至 无数据
- 项目状态:已结题
- 来源:
- 关键词:
项目摘要
Superfluidity, or fluid flow without viscosity, is an intrinsically quantum-mechanical phenomenon, that is, where it occurs, it is intimately connected to the properties of the system at a microscopic, atomic level. Superfluidity is nevertheless associated with some spectacular large-scale effects, most notably in liquid Helium II, where under the right circumstances the fluid can for example flow up the walls and out from a confining vessel. Superfluidity is observable in a variety of physical systems, and is frequently intimately associated with the phenomenon of Bose-Einstein condensation, where, for certain kinds of identical (bosonic) particles, for low enough temperatures a significant fraction of the particles collapse into the same state, from then on in a sense acting as one. The 1995 observation of Bose-Einstein condensation in dilute atomic vapours, for which the 2001 Nobel prize was won by Eric Cornell, Wolfgang Ketterle, and Carl Wieman, thus provided a huge stimulus to the fundamental study of superfluid and related properties. This is in significant part because such dilute vapours are significantly simpler to describe and understand than the much denser systems of liquid Helium or the metals and ceramics in which the related phenomenon of superconductivity is observed. A much more recent, related phenomenon is that of so-called exciton and polariton condensates in semiconductors, with particular interest paid to the properties of the light emitted from such systems.This is an expanding field, with workers on the variety of superfluid and condensation phenomena coming from an equally broad range of scientific backgrounds. There is therefore substantial scope for interdisciplinary cooperation, particularly as a number of seemingly distinct theoretical methodologies, each with its own particular strengths and insights, have been developed independently to describe systems which appear to have many things in common. This applies particularly when attempting a precise description of dynamics (i.e., when the system is no longer at equilibrium), and when the temperature of the system is low, but noticeably greater than absolute zero. For any potential applications, such as in precision measurement of surface forces, time and frequency standards, and even the possible elucidation of gravitational effects beyond those described within Einstein's general theory of relativity, a thorough, predictive understanding of finite temperature in a non-equilibrium configuration will be essential, as well as being of fundamental physical interest. We have therefore chosen to hold the workshop FINESS, which will have an outstanding international roster of leading scientists in their fields in Durham, September 2009. This is a great opportunity for UK physics, notably for junior workers in the field attending the workshop.
超流性,或没有粘性的流体流动,是一种内在的量子力学现象,也就是说,在它发生的地方,它与系统在微观原子水平上的性质密切相关。然而,超流性与一些壮观的大尺度效应有关,最明显的是在液态氦II中,在适当的情况下,流体可以沿着壁向上流动,并从封闭的容器中流出。超流性在各种物理系统中都可以观察到,并且经常与玻色-爱因斯坦凝聚现象密切相关,其中,对于某些种类的相同(玻色子)粒子,对于足够低的温度,相当大一部分粒子坍缩到相同的状态,从那时起在某种意义上作为一个。1995年,埃里克·康奈尔、沃尔夫冈·凯特尔和卡尔·威曼在稀原子蒸气中观察到玻色-爱因斯坦凝聚,并因此获得2001年诺贝尔奖,这为超流体及其相关性质的基础研究提供了巨大的刺激。这在很大程度上是因为这种稀蒸汽比密度大得多的液氦或金属和陶瓷系统更容易描述和理解,在这些系统中观察到了相关的超导现象。一个更近的相关现象是半导体中所谓的激子和极化子凝聚,人们对这种系统发出的光的性质特别感兴趣。这是一个不断扩大的领域,研究各种超流体和凝聚现象的工作者来自同样广泛的科学背景。因此,跨学科合作的空间很大,特别是因为一些看似不同的理论方法,每个都有自己的特殊优势和见解,已经独立发展,以描述似乎有许多共同点的系统。这尤其适用于试图精确描述动态(即,当系统不再处于平衡时),以及当系统的温度低但明显大于绝对零度时。对于任何潜在的应用,例如表面力的精确测量,时间和频率标准,甚至可能解释爱因斯坦广义相对论中描述的引力效应,对非平衡态中有限温度的彻底,预测性的理解将是必不可少的,也是基本的物理兴趣。因此,我们选择在达勒姆举办FINESS研讨会,该研讨会将于2009年9月在各自领域的杰出国际领先科学家名册上举行。这对英国物理学来说是一个绝佳的机会,特别是对于参加研讨会的该领域初级工作者来说。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Simon Gardiner其他文献
Simon Gardiner的其他文献
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{{ truncateString('Simon Gardiner', 18)}}的其他基金
Excitations, Rotational Dynamics, and Rotational Sensing in 2-Species Bose-Einstein Condensates
两种玻色-爱因斯坦凝聚体中的激发、旋转动力学和旋转传感
- 批准号:
EP/K030558/1 - 财政年份:2013
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$ 2.46万 - 项目类别:
Research Grant
Relative Phase and Coherence in Bright Matter-Wave Solitons
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EP/G056781/1 - 财政年份:2009
- 资助金额:
$ 2.46万 - 项目类别:
Research Grant
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