High-quality flatband resonances in few-cell moiré superlattices by band-offset tuning

Author:

Hong Peilong12ORCID,Yi Mingfang1ORCID,Zhang Liwei1ORCID,Liang Yi3ORCID

Affiliation:

1. School of Mathematics and Physics, Anqing Normal University 1 , Anqing, Anhui 246133, China

2. School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China 2 , Chengdu, Sichuan 611731, China

3. Guangxi Key Lab for Relativistic Astrophysics, Center on Nanoenergy Research, School of Physical Science and Technology, Guangxi University 3 , Nanning, Guangxi 530004, China

Abstract

Wave localization by flatband mechanisms underlies prominent moiré physics and relevant applications. While typically studied in periodic superlattices, the wave-confining capability of finite-size superlattices is important both fundamentally and practically. Here, we investigate wave localization in few-cell moiré superlattices through fine tuning of band offset, which is accomplished by jointly adjusting structural parameters of constitutive lattice. Remarkably, the quality factor Q, which reflects the capability of few-cell superlattices to localize wave, can reach quite high levels with appropriate band offset. Thus, superior wave localization is feasible in few-cell superlattices, indicated by the very high Q up to 104−105 for single-cell superlattices and extremely high Q up to >107 for double-cell superlattices. Moreover, the Q patterns are distinct for different flatband resonances and different number of cells, while narrow high-Q (∼108) branches appear for the triple-cell superlattices. The narrow high-Q branches are hard to be reached in practice, since it requires stringent control on structural parameters. In this respect, the double-cell superlattices are promising for exploiting unconventional effects induced by wave localization, since it can achieve extremely high-Q (>107) resonances within a sufficiently large tuning range. These results demonstrate the profound role of band-offset tuning in achieving strong wave localization in few-cell superlattices, which is useful for on-chip applications such as lasing, optical filters, and optical harmonic generation.

Funder

Sichuan Science and Technology Program

Fundamental Research Funds for the Central Universities

Open Project funding of the Ministry of Education Key Laboratory of Weak-Light Nonlinear Photonics

Natural Science Foundation of Anhui Higher Education Institutions of China

Guangxi Natural Science Foundation

Publisher

AIP Publishing

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