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二维晶格中的高温激子凝聚

High-Temperature Excitonic Condensation in 2D Lattice.

作者信息

Xu Yushuo, Wang Yuanyuan, Yu Shiqiang, Sun Dongyue, Dai Ying, Huang Baibiao, Wei Wei

机构信息

School of Physics, State Key Laboratory of Crystal Materials, Shandong University, Jinan, 250100, China.

Science, Mathematics and Technology Cluster, Singapore University of Technology and Design, Singapore, 487372, Singapore.

出版信息

Adv Sci (Weinh). 2024 Nov;11(41):e2404436. doi: 10.1002/advs.202404436. Epub 2024 Sep 6.

Abstract

Exploration of high-temperature bosonic condensation is of significant importance for the fundamental many-body physics and applications in nanodevices, which, however, remains a huge challenge. Here, in combination of many-body perturbation theory and first-principles calculations, a new-type spatially indirect exciton can be optically generated in two-dimensional (2D) BiSTe because of its unique structure feature. In particular, the spin-singlet spatially indirect excitons in BiSTe monolayer are dipole/parity allowed and reveal befitting characteristics for excitonic condensation, such as small effective mass and satisfied dilute limitation. Based on the layered BiSTe, the possibility of the high-temperature excitonic Bose-Einstein condensation (BEC) and superfluid state in two dimensions, which goes beyond the current paradigms in both experiment and theory, are proved. It should be highlighted that record-high phase transition temperatures of 289.7 and 72.4 K can be theoretically predicted for the excitonic BEC and superfluidity in the atomic thin BiSTe, respectively. It therefore can be confirmed that BiSTe featuring bound bosonic states is a fascinating 2D platform for exploring the high-temperature excitonic condensation and applications in such as quantum computing and dissipationless nanodevices.

摘要

探索高温玻色凝聚对于基础多体物理学以及纳米器件应用具有重要意义,然而这仍然是一个巨大的挑战。在此,通过多体微扰理论与第一性原理计算相结合,由于其独特的结构特征,在二维(2D)BiSTe中可以光学产生一种新型的空间间接激子。特别地,BiSTe单层中的自旋单重态空间间接激子是偶极/宇称允许的,并且展现出适合激子凝聚的特性,例如有效质量小且满足稀释限制。基于层状BiSTe,证明了二维中高温激子玻色 - 爱因斯坦凝聚(BEC)和超流态的可能性,这超越了当前实验和理论中的范式。应当强调的是,对于原子级薄BiSTe中的激子BEC和超流性,理论上分别可以预测到创纪录的高相变温度289.7 K和72.4 K。因此可以确认,具有束缚玻色态的BiSTe是探索高温激子凝聚以及在量子计算和无耗散纳米器件等方面应用的一个极具吸引力的二维平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a69/11538676/56914bcd0401/ADVS-11-2404436-g003.jpg

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