Author Affiliations
Abstract
1 Xi’an Institute of Optics and Precision Mechanics of Chinese Academy of Sciences, Center for Attosecond Science and Technology, State Key Laboratory of Transient Optics and Photonics, Xi’an, China
2 University of Chinese Academy of Sciences, Beijing, China
3 Shanxi University, Collaborative Innovation Center of Extreme Optics, Taiyuan, China
Moiré superlattices, a twisted functional structure crossing the periodic and nonperiodic potentials, have recently attracted great interest in multidisciplinary fields, including optics and ultracold atoms, because of their unique band structures, physical properties, and potential implications. Driven by recent experiments on quantum phenomena of bosonic gases, the atomic Bose–Einstein condensates in moiré optical lattices, by which other quantum gases such as ultracold fermionic atoms are trapped, could be readily achieved in ultracold atom laboratories, whereas the associated nonlinear localization mechanism remains unexploited. Here, we report the nonlinear localization theory of ultracold atomic Fermi gases in two-dimensional moiré optical lattices. The linear Bloch-wave spectrum of such a twisted structure exhibits rich nontrivial flat bands, which are separated by different finite bandgaps wherein the existence, properties, and dynamics of localized superfluid Fermi gas structures of two types, gap solitons and gap vortices (topological modes) with vortex charge S = 1, are studied numerically. Our results demonstrate the wide stability regions and robustness of these localized structures, opening up a new avenue for studying soliton physics and moiré physics in ultracold atoms beyond bosonic gases.
moiré optical lattices gap solitons ultracold Fermi gases density-functional equation 
Advanced Photonics Nexus
2024, 3(3): 036006
作者单位
摘要
1 武汉理工大学,硅酸盐建筑材料国家重点实验室,武汉430070
2 中建材玻璃新材料研究院集团有限公司,安徽 蚌埠233000
3 玻璃新材料创新中心(安徽)有限公司,安徽 蚌埠233000
4 武汉理工大学信息学院,武汉430070
推动硅酸盐材料制造过程的低碳排放对于实现碳达峰、碳中和总体战略目标意义重大。本工作以平板玻璃窑炉为基础,采用数值模拟方法开展氢能在玻璃窑炉中应用的基础研究。分析采用天然气/氢气混合燃料对玻璃窑炉燃烧空间温度场/速度场分布、燃烧生成烟气成分的影响,预测氢能在玻璃窑炉中应用的可行性。结果表明,采用天然气/氢气混合燃料为玻璃液熔化提供能量,可以保证玻璃窑炉温度制度稳定。采用天然气/氢气混合燃料供能,燃料燃烧速率加快,释放热量集中,掺氢体积比为20%及以上时,燃烧形成的火焰长度会明显缩短,而热烟气在窑炉内停留时间延长。对比基础窑炉,采用掺氢比例40%的燃料,窑炉总烟气排放质量减少了4.13%,CO2排放质量减少了12.50%,烟气中NOx浓度由1 093 mg·Nm-3 (干燥,8% O2条件下)增加至1 282 mg·Nm-3 (干燥,8% O2条件下)。为推动氢能在硅酸盐制造领域的应用还需开展燃烧系统设计、耐火材料侵蚀等方面研究,以解决氢能在大型窑炉中应用存在的问题。
玻璃熔窑 氢气 燃烧过程 仿真 glass furnace hydrogen energy combustion process simulation 
硅酸盐学报
2023, 51(9): 2179
Author Affiliations
Abstract
1 State Key Laboratory of Transient Optics and Photonics, Xi’an Institute of Optics and Precision Mechanics of Chinese Academy of Sciences, Xi’an 710119, China
2 University of Chinese Academy of Sciences, Beijing 100049, China
Parity–time (PT) symmetric lattices have been widely studied in controlling the flow of waves, and recently, moiré superlattices, connecting the periodic and non-periodic potentials, have been introduced for exploring unconventional physical properties in physics, while the combination of both and nonlinear waves therein remains unclear. Here, we report a theoretical survey of nonlinear wave localizations in PT symmetric moiré optical lattices, with the aim of revealing localized gap modes of different types and their stabilization mechanism. We uncover the formation, properties, and dynamics of fundamental and higher-order gap solitons as well as vortical ones with topological charge, all residing in the finite bandgaps of the underlying linear-Bloch wave spectrum. The stability regions of localized gap modes are inspected in two numerical ways: linear-stability analysis and direct perturbance simulations. Our results provide an insightful understanding of soliton physics in combined versatile platforms of PT symmetric systems and moiré patterns.
Photonics Research
2023, 11(2): 196
Author Affiliations
Abstract
1 Chinese Academy of Sciences, Xi’an Institute of Optics and Precision Mechanics, State Key Laboratory of Transient Optics and Photonics, Xi’an, China
2 University of Chinese Academy of Sciences, Beijing, China
Bose–Einstein condensate (BEC) exhibits a variety of fascinating and unexpected macroscopic phenomena, and has attracted sustained attention in recent years—particularly in the field of solitons and associated nonlinear phenomena. Meanwhile, optical lattices have emerged as a versatile toolbox for understanding the properties and controlling the dynamics of BEC, among which the realization of bright gap solitons is an iconic result. However, the dark gap solitons are still experimentally unproven, and their properties in more than one dimension remain unknown. In light of this, we describe, numerically and theoretically, the formation and stability properties of gap-type dark localized modes in the context of ultracold atoms trapped in optical lattices. Two kinds of stable dark localized modes—gap solitons and soliton clusters—are predicted in both the one- and two-dimensional geometries. The vortical counterparts of both modes are also constructed in two dimensions. A unique feature is the existence of a nonlinear Bloch-wave background on which all above gap modes are situated. By employing linear-stability analysis and direct simulations, stability regions of the predicted modes are obtained. Our results offer the possibility of observing dark gap localized structures with cutting-edge techniques in ultracold atoms experiments and beyond, including in optics with photonic crystals and lattices.
Bose–Einstein condensates optical lattices photonic crystals and lattices self-defocusing Kerr nonlinearity dark gap solitons and soliton clusters 
Advanced Photonics
2019, 1(4): 046004

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