Self-Bound Droplets in Two-Component Dilute Bose Gases
Self-Bound Droplets in Two-Component Dilute Bose Gases
批准号:
2441282
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2020
资助国家:
英国
项目状态:
未结题
起止时间:
2020 至 --
中文摘要
在一个极端温度有限的世界里,很难想象高温和低温的系统。然而,世界各地都有能够将物质冷却到几乎绝对零度的实验。物质在这些温度下开始以许多有趣的方式表现,其中一个例子是玻色-爱因斯坦凝聚体(BEC)。所有粒子都有一个与温度内在联系的波长。在室温下,这一波长可以忽略不计,因此在气体中,粒子碰撞可以被模拟为“台球”相互作用。进入超冷状态导致这样的波长变得与粒子之间的距离相当。这可以被认为是粒子经历了一场“身份危机”,导致它们的行动极其连贯,就像步调一致一样。这种物质状态是BEC,它是量子物理的一种表现,具有许多有趣的性质。一种这样的性质是超流性,即流体不具有粘性,因此理论上可以永远流动。超冷气体领域是一个不断发展的领域,有许多研究途径,从探索新的物质状态到模拟宇宙机制。这个项目将专注于一种被称为量子液滴的新物质状态。对这种状态的第一次预测是在2015年,D.S.Petrov的工作,他认为可以在两种玻色子(即原子)的混合气体中产生液滴。这背后的机制是迫使气体之间的相互作用具有吸引力。然而,通过使气体之间的相互作用变得主要有吸引力,这将导致坍塌,因为没有任何效果来抵消这种吸引力。彼得罗夫工作的独创性来自于量子涨落的包含。量子涨落存在于自然界中,但它们的影响往往太弱而无法检测到。在彼得罗夫探索的系统中,量子涨落呈现出排斥相互作用。有人认为,通过计入量子涨落,排斥效应可以抵消气体混合物的崩溃。这导致了一种平衡的稳定状态。稳定状态的中心有一个很大的恒定密度,边缘有低密度的尾巴,类似于经典的液滴,如水滴。量子液滴是一种特殊的物体,因为它们存在于低密度气体中,但它们可以作为不可压缩的流体。已经有一些实验和理论工作来研究量子液滴,但这个领域仍然很年轻,还有很多需要探索的地方,比如激发和动力学。第一个在混合物中的量子液滴是在钾的混合物中产生的,这是成功的,但存在寿命有限的缺点,因此观察到的时间依赖性质很少。该项目将与达勒姆大学的实验工作相结合,试图在铯和Yb的混合物中创建量子液滴。这种混合物的一个主要好处是延长了寿命,因此可以对实验结果进行建模。该项目中使用的技术将主要是数值计算,包括求解格罗斯-皮塔夫斯基方程--模拟BEC的主要方法--扩展到包括量子涨落的影响。这个项目的第一个目标将是使用模拟来帮助实验者创造液滴的方向。这将包括隔离导致液滴形成的参数值。从那时起,该项目预计将与实验结果一起工作,与已知的理论进行比较。由于量子液滴领域还很年轻,有许多性质有待探索,这项工作将从理论上探索其中的一些性质。此外,量子水滴提供了一个由量子波动稳定的系统,这种现象如此普遍,但往往很难被检测到,这使得这个项目既有意义
英文摘要
Existing in a world in which temperature extremes are limited, it is difficult to envisage systems of high and low temperatures. However, across the world there are experiments capable of cooling matter down to almost absolute zero. Matter begins to behave in many intriguing ways at these temperatures, one example being the Bose-Einstein Condensate (BEC).All particles possess a wavelength which is intrinsically linked to temperature. At room temperature, this wavelength is negligible and thus within a gas, the particle collisions can be modelled as 'billiard-ball' interactions. Moving into the ultracold regime leads to such wavelengths becoming comparable to the distance between particles. This can be thought of as particles undergoing an 'identity crisis' causing them to act extremely coherently as if in lockstep. This state of matter is a BEC and it is a manifestation of quantum physics with many interesting properties. One such property is superfluidity, in which a fluid possesses no viscosity and hence can theoretically flow forever. The field of ultracold gases is an ever-growing field with many avenues of research from exploring new states of matter through to modelling cosmological mechanisms.This project will focus on a new state of matter called the quantum droplet. The first prediction of this state came in 2015 with the work of D.S.Petrov, who argued that droplets could be created in two mixed gases of bosons (i.e. atoms). The mechanism behind this would be to force the interaction between the gases to be attractive. However, by causing the interactions between the gases to become dominantly attractive, this would lead to a collapse as there would be no effects to counteract the attraction. The ingenuity of Petrov's work arises from the inclusion of quantum fluctuations.Quantum fluctuations are present throughout nature, but their effects are often too weak to be detected. In the system explored by Petrov, quantum fluctuations present a repulsive interaction. It was argued that by including quantum fluctuations, the repulsive effects could counter the collapse of the gas mixture. This leads to a stabilised state in equilibrium. The stabilised state would have a large constant density in the centre, with low density tails at the edges, akin to a classical droplet such as a water droplet. Quantum droplets are peculiar objects as they exist in low density gases, yet they can behave as an incompressible fluid.There has been some experimental and theoretical work looking into quantum droplets, but the field is still young and there is much to explore such as excitations and dynamics. The first quantum droplets in mixtures were created in mixtures of Potassium which were successful but had the drawback of limited lifetimes, thus few time dependent properties were observed. This project will work in conjunction with experimental work at Durham University, attempting to create quantum droplets in mixtures of Caesium and Ytterbium. One major benefit of this mixture will be extended lifetimes and thus it will be possible to model the experimental results. The techniques employed in this project will be largely numerical and will consist of solving the Gross-Pitaevskii equation - a mainstay in modelling BECs - extended to include the effects of quantum fluctuations. The first goal of this project will be using simulations to aid the direction of the experimentalists to create the droplets. This will include isolating parameter values leading to droplet formation. From there, the project is predicted to work alongside the results of the experiments to compare with known theory.With the field of quantum droplets being young, there are many properties to be explored and this work will theoretically explore some of these properties. Furthermore, quantum droplets present a system stabilised by quantum fluctuations, a phenomenon so ubiquitous yet often so difficult to detect, making this project both relevant
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