Atomic Quantum Technologies for Quantum Matter and Fundamental Physics Applications

Jorge Yago Malo, Luca Lepori, Laura Gentini, M. Chiofalo
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Abstract

Physics is living an era of unprecedented cross-fertilization among the different areas of science. In this perspective review, we discuss the manifold impact that state-of-the-art cold and ultracold-atomic platforms can have in fundamental and applied science through the development of platforms for quantum simulation, computation, metrology and sensing. We illustrate how the engineering of table-top experiments with atom technologies is engendering applications to understand problems in condensed matter and fundamental physics, cosmology and astrophysics, unveil foundational aspects of quantum mechanics, and advance quantum chemistry and the emerging field of quantum biology. In this journey, we take the perspective of two main approaches, i.e., creating quantum analogues and building quantum simulators, highlighting that independently of the ultimate goal of a universal quantum computer to be met, the remarkable transformative effects of these achievements remain unchanged. We wish to convey three main messages. First, this atom-based quantum technology enterprise is signing a new era in the way quantum technologies are used for fundamental science, even beyond the advancement of knowledge, which is characterised by truly cross-disciplinary research, extended interplay between theoretical and experimental thinking, and intersectoral approach. Second, quantum many-body physics is unavoidably taking center stage in frontier’s science. Third, quantum science and technology progress will have capillary impact on society, meaning this effect is not confined to isolated or highly specialized areas of knowledge, but is expected to reach and have a pervasive influence on a broad range of society aspects: while this happens, the adoption of a responsible research and innovation approach to quantum technologies is mandatory, to accompany citizens in building awareness and future scaffolding. Following on all the above reflections, this perspective review is thus aimed at scientists active or interested in interdisciplinary research, providing the reader with an overview of the current status of these wide fields of research where cold and ultracold-atomic platforms play a vital role in their description and simulation.
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用于量子物质和基础物理学应用的原子量子技术
物理学正处于一个不同科学领域之间前所未有的交叉融合时代。在这篇视角综述中,我们讨论了最先进的冷原子和超冷原子平台通过开发量子模拟、计算、计量和传感平台对基础科学和应用科学产生的多方面影响。我们阐述了利用原子技术进行桌面实验的工程设计如何产生应用,以了解凝聚态物质和基础物理学、宇宙学和天体物理学中的问题,揭示量子力学的基本方面,并推动量子化学和新兴的量子生物学领域的发展。在这一历程中,我们从创建量子模拟器和构建量子模拟器这两种主要方法的角度出发,强调无论通用量子计算机的最终目标能否实现,这些成就所带来的显著变革性影响都不会改变。我们希望传达三个主要信息。首先,这项以原子为基础的量子技术事业标志着量子技术用于基础科学的方式进入了一个新时代,甚至超越了知识的进步,其特点是真正的跨学科研究、理论与实验思维之间的扩展性相互作用以及跨部门方法。第二,量子多体物理不可避免地成为前沿科学的中心。第三,量子科技进步将对社会产生 "毛细血管 "式的影响,这意味着这种影响不会局限于孤立的或高度专业化的知识领域,而是有望触及并影响到社会的方方面面:在这种情况下,必须对量子技术采取负责任的研究和创新方法,陪伴公民建立认知和未来支架。基于上述思考,本视角综述面向活跃在跨学科研究领域或对其感兴趣的科学家,为读者概述这些广泛研究领域的现状,其中冷原子和超冷原子平台在其描述和模拟中发挥着至关重要的作用。
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