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Investigating strongly interacting Quantum Field Theories at finite density via holography

Investigating strongly interacting Quantum Field Theories at finite density via holography
通过全息术研究有限密度下的强相互作用量子场论
批准号:
2601854
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:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --

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中文摘要
翻译
量子场论在有限密度的电荷守恒在相对论领域(如重子电荷在QCD)不是很好地理解在强耦合体制。在强耦合下,微扰方法是不充分的,现有的非微扰方法(点阵QFT)受到臭名昭著的符号问题的约束。与此同时,人们对理解有限密度强耦合qft的浓厚兴趣是由两个发展引起的:新的专用重离子加速器(FAIR和NICA)计划在未来2-3年内发射,以及对中子星和类似物体的专门精确观测。FAIR和NICA将在不可忽略的密度区域探索QCD的相图,总体目标是找到推测的临界点并研究其附近的核物质。中子星观测的目的是了解超高密度QCD的奇异相所描述的核心结构。对这些领域的理论理解非常有限。提出的研究路线将通过全息(计弦二象性)研究有限化学势下的强耦合qft。主要目的是建立相应的量子流体在该状态下的性质,特别是在临界点附近的性质。这包括建立二阶手性流体的流体动力学,并使用双重力方法和专用的QFT模型研究其在强耦合下的性质。我们希望找到普遍的定性特征,在这种情况下,对该领域的影响将是非常重大的。至少,我们将在有限密度下理解某种类型的强耦合qft,目前我们对它知之甚少。经过一段时间的准备,该计划包括建立一个已知电荷守恒的量子场的全息对偶,并研究其导数展开的一阶和二阶输运性质。手性流体动力学似乎有许多明显的特征(其中一些是已知的光活性介质),可以通过通常用于夸克-胶子等离子体的探针来研究。同时,我们将建立一个具有临界点的自下而上的全息模型来研究强耦合手性介质的临界行为的可能特征。将构建一个包括久保关系层次的一般形式体系。第二阶段,也就是更加雄心勃勃的阶段,将包括计算第一阶段任何结果的有限耦合修正。不幸的是,现有的弦理论紧化结果允许人们探索有限密度的系统,在文献中被批评为不可靠。因此,第一步将是建立一个可靠的紧化方案- -这在技术上可能相当具有挑战性,只有在有利条件下才会尝试。我们计划与维多利亚大学(加拿大)和爱丁堡大学的理论物理学家合作。本项目属于量子场论(主要)、弦理论和数学物理研究领域。
英文摘要
Quantum Field Theories at finite density of charges conserved in the relativistic domain (such as the baryonic charge in QCD) are not well understood in the regime of strong coupling. Perturbative approach at strong coupling is inadequate and the existing non-perturbative methods (lattice QFT) are constrained by the infamous sign problem. Meanwhile, strong interest in understanding finite density strongly coupled QFTs is prompted by two developments: new purpose-built heavy ion accelerators (FAIR and NICA) scheduled for launch in the next 2-3 years and dedicated precision observations of neutron stars and similar objects. FAIR and NICA will explore the phase diagram of QCD in the region of non-negligeable density with an overall aim of finding the conjectured critical point and investigating nuclear matter in its vicinity. Neutron star observations are aimed at understanding the structure of the cores described by exotic phases of QCD at super-high density. Theoretical understanding of these domains is extremely limited.The proposed line of research will investigate strongly coupled QFTs at finite chemical potential via holography (gauge-string duality). The main objective is to establish properties of the corresponding quantum fluid in this regime and especially in the vicinity of a critical point. This involves building fluid dynamics of chiral fluids to second order and investigating its properties at strong coupling using dual gravity methods and purpose-built QFT models. We hope to come across universal qualitative features in which case the impact on the field will be very significant. At the very least, we shall understand strongly coupled QFTs of a certain type at finite density, where very little is known at the moment.The plan involves, after some preparatory period, building a holographic dual of a known QFT with a conserved charge and investigating its transport properties at first and second order of the derivative expansion. Chiral fluid dynamics appears to have a number of distinct features (some of them are known from optically active media) which can be studies via probes normally used for quark-gluon plasma. At the same time, we shall build a bottom-up holographic model with a critical point to investigate possible signatures of critical behaviour of a strongly coupled chiral medium. A general formalism including the hierarchy f Kubo relations will be constructed.A second, more ambitious stage, will include computing finite coupling corrections to any of the results of stage one. Unfortunately, the existing string theory compactification results allowing one to explore systems with finite density were criticized in the literature as unreliable. Therefore, the first step would be establishing a reliable compactification scheme - this may be rather challenging technically and will be attempted only under favourable conditions.We plan to collaborate with theoretical physicists at University Victoria (Canada) and University of Edinburgh. This project falls within Quantum Field Theory (mostly), String Theory and Mathematical Physics research areas.
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共振价键理论及其在强关联电子体系中的应用
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  • 项目类别:
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  • 资助金额:
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  • 项目类别:
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铜(锰)氧化物强关联电子系统中的异常物理现象
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