Yu Yiling, Li Guoqing, Xu Yan, Hu Chong, Liu Xiaoze, Cao Linyou
School of Physics and Technology, Wuhan University, Wuhan 430072, China.
Department of Materials Science and Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.
ACS Nano. 2023 Aug 22;17(16):15474-15481. doi: 10.1021/acsnano.3c01365. Epub 2023 Aug 4.
Quantum liquids, systems exhibiting effects of quantum mechanics and quantum statistics at macroscopic levels, represent one of the most exciting research frontiers of modern physical science and engineering. Notable examples include Bose-Einstein condensation (BEC), superconductivity, quantum entanglement, and a quantum liquid. However, quantum liquids are usually only stable at cryogenic temperatures, significantly limiting fundamental studies and device development. Here we demonstrate the formation of stable electron-hole liquid (EHL) with the quantum statistic nature at temperatures as high as 700 K in monolayer MoS and elucidate that the high-temperature EHL exists as droplets in sizes of around 100-160 nm. We also develop a thermodynamic model of high-temperature EHL and, based on the model, compile an exciton phase diagram, revealing that the ionized photocarrier drives the gas-liquid transition, which is subsequently validated with experimental results. The high-temperature EHL provides a model system to enable opportunities for studies in the pursuit of other high-temperature quantum liquids. The results can also allow for the development of quantum liquid devices with practical applications in quantum information processing, optoelectronics, and optical interconnections.
量子液体是在宏观层面展现出量子力学和量子统计效应的系统,是现代物理科学与工程中最令人兴奋的研究前沿领域之一。显著的例子包括玻色-爱因斯坦凝聚(BEC)、超导性、量子纠缠以及量子液体。然而,量子液体通常仅在低温下稳定,这极大地限制了基础研究和器件开发。在此,我们展示了在单层二硫化钼中,在高达700K的温度下形成具有量子统计性质的稳定电子-空穴液体(EHL),并阐明高温EHL以尺寸约为100 - 160nm的液滴形式存在。我们还开发了高温EHL的热力学模型,并基于该模型编制了激子相图,揭示了电离光载流子驱动气-液转变,随后该转变得到了实验结果的验证。高温EHL提供了一个模型系统,为研究其他高温量子液体创造了机会。这些结果还能够推动具有量子信息处理、光电子学和光互连等实际应用的量子液体器件的发展。