论文标题

振动隔离的量子类似:从室温超荧光到高温超导性

Quantum Analog of Vibration Isolation: From Room Temperature Superfluorescence to High Temperature Superconductivity

论文作者

Gundogdu, Kenan, So, Franky, Brongersma, Mark L., Biliroglu, Melike, Findik, Gamze

论文摘要

量子技术的发展和使用受到基本挑战的阻碍:量子材料在高温下由于量子相干性丧失而在极低的温度下表现出宏观量子性能。在这里,基于我们最近发现的室温超荧光在钙钛矿中,我们介绍了振动隔离的量子类似物“ Qavi”,“ QAVI”模型,并解释了它如何保护量子相,以免在高温下进行降低。然后,我们假设在实际温度下观察宏观量子现象的要求,并为所有宏观量子相变的统一模型提出了统一模型。我们进一步介绍了由QAVI过程介导的宏观量子相变的温度和密度相图的一般特征,并确定在高TC超导体的相图中观察到的相似性。了解这种基本的量子相干保护机制必须加速发现高温宏观量子现象,并为开发在实际条件下运行的量子技术提供了重要潜力。

The development and the use of quantum technologies are hindered by a fundamental challenge: Quantum materials exhibit macroscopic quantum properties at extremely low temperatures due to the loss of quantum coherence at elevated temperatures. Here, based on our recent discovery of room temperature superfluorescence in perovskites, we present the Quantum Analog of Vibration Isolation, 'QAVI', model and explain how it protects the quantum phase against dephasing at high temperatures. We then postulate the requirements for observation of macroscopic quantum phenomena at practical temperatures and propose a unified model for all macroscopic quantum phase transitions. We further present the general features of the temperature and density phase diagram of macroscopic quantum phase transitions that are mediated by the QAVI process and identify the similarities observed in the phase diagram of high Tc superconductors. Understanding this fundamental quantum coherence protection mechanism is imperative to accelerate the discovery of high temperature macroscopic quantum phenomena, and offers significant potential for developing quantum technologies functioning under practical conditions.

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