论文标题

连续体中光子准结合状态的通用稳定的跨表面与二维半导体结合

A universal and stable metasurface for photonic quasi bound state in continuum coupled with two dimensional semiconductors

论文作者

Kumar, Brijesh, Singh, Anuj Kumar, Mandal, Kishor K, Sharma, Parul, Sahoo, Nihar Ranjan, Kumar, Anshuman

论文摘要

激子与光腔模式的强耦合对于理解纳米级量子电动力学的基本物理以及量子信息技术中的实际应用至关重要。在连续体(BICS)中,在二维半导体(例如过渡金属二核苷)(TMDC)(TMDC)和光子准结合状态等二维半导体(例如过渡金属二核苷)(BICS)中进行了几项尝试。我们在平台中确定了两个差距,以实现TMDC激子和光子准BICS之间的强耦合:首先,在迄今为止的研究中,已经采用了不同的空腔体系结构与不同的TMDC耦合。这意味着通常,随着一个从一个TMDC移动到另一个TMDC,需要修改空腔的制造过程流量,这可能会限制现场的技术进步。其次,尚未讨论迄今为止,在研究中制造缺陷对这些子系统的强耦合的影响。在这项工作中,我们通过优化具有相同体系结构的空腔来解决这两个问题,该腔体可以与四个典型的TMDC(MOS $ _2 $,WS $ _2 $,MOSE $ _2 $,WSE $ _2 $)进行,并对相关的Phtophoconic Quasasi-bics和对强度的影响进行详细研究。

Strong coupling of excitons to optical cavity modes is of immense importance to understanding the fundamental physics of quantum electrodynamics at the nanoscale as well as for practical applications in quantum information technologies. There have been several attempts at achieving strong coupling between excitons in two dimensional semiconductors such as transition metal dichalcogenides (TMDCs) and photonic quasi-bound states in the continuum (BICs). We identify two gaps in the platforms for achieving strong coupling between TMDC excitons and photonic quasi-BICs: firstly, in the studies so far, different cavity architectures have been employed for coupling to different TMDCs. This would mean that typically, the fabrication process flow for the cavities will need to be modified as one moves from one TMDC to the other, which can limit the technological progress in the field. Secondly, there has been no discussion of the impact of fabrication imperfections in the studies on strong coupling of these subsystems so far. In this work, we address these two questions by optimizing a cavity with the same architecture which can couple to the four typical TMDCs (MoS$_2$, WS$_2$, MoSe$_2$, WSe$_2$) and perform a detailed investigation on the fabrication tolerance of the associated photonic quasi-BICs and their impact on strong coupling.

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