Full‐Landscape Condensation Phases for Long‐Lived Excitons in 2D Tellurium: Crystal‐Field Splitting and Finite‐Momentum Excitons

Author:

Xia Yujie1,Le Shu 1,Zhang Yiming1,Chen Ying2,Peng Lei1,Zhang Juan1,Li Ben1,Shao Hezhu3,Cen Yan4,Sui Zhan5,Zhu Heyuan1,Zhang Hao16ORCID

Affiliation:

1. The State Key Laboratory of Photovoltaic Science and Technology and School of Information Science and Technology and Key Laboratory for Information Science of Electromagnetic Waves (MOE) and Department of Optical Science and Engineering and Key Laboratory of Micro and Nano Photonic Structures (MOE) Fudan University 200433 Shanghai China

2. Engineering Research Center of Advanced Lighting Technology, and Academy for Engineering and Technology Fudan University Shanghai 200433 China

3. College of Electrical and Electronic Engineering Wenzhou University Wenzhou 325035 China

4. Department of Physics Fudan University Shanghai 200433 China

5. Shanghai Institute of Laser and Plasma China Academy of Engineering Physics 197 Chengzhong Road Jiading Shanghai 201800 China

6. Yiwu Research Institute of Fudan University Chengbei Road Yiwu City Zhejiang 322000 China

Abstract

AbstractThe realization of high‐temperature exciton macroscopic quantum phases in materials still remains challenging due to strict constraints in thermal stabilities and excitonic lifetimes. In this work, by using first‐principles calculations, the exciton dispersions and macroscopic quantum phase transitions of 2D α‐ and β‐Te are investigated. The excitons with lowest eigen energy for both α‐ and β‐Te are dark restricted by the crystal‐field symmetries. The Bose–Einstein condensation (BEC) transition for α‐ and β‐Te can be realized at 165.4 and 32.8 K with low excitation power densities of 0.42 × 1012 and 1.0 × 1012 cm−2, respectively. Furthermore, the phase transitions from insulating free exciton (FE) gas to conducting electron–hole plasma (EHP) and electron–hole liquid (EHL), as well as that from BEC to superfluidity phases are also predicted. Finally, the authors investigate the microscopic dynamics for bright excitons of 2D tellurium and find that they reach thermal equilibrium at 1–50 fs and excitonic lifetimes can reach 1–40 ns, beneficial for experimental observation of quantum condensate states. The findings in this work not only demonstrate the excellent optoelectronic properties of 2D tellurium allotropes, but also provide a promising platform for experimental realization of high‐temperature excitonic macroscopic quantum condensates.

Funder

Natural Science Foundation of Shanghai Municipality

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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