论文标题
腔的共形光学黑洞
Conformal optical black hole for cavity
论文作者
论文摘要
耳语画廊模式(WGM)腔对于探索较强的光 - 物质相互作用的物理学很重要。然而,由于通过弯曲边界的光隧道效应,它普遍遭受了臭名昭著的辐射损失。在这项工作中,我们提出并演示了基于转换光学元件的光学黑洞(OBH)腔。无限宽的潜在屏障完全抑制了OBH腔中所有WGM的辐射损失。此外,腔外的WGM田地揭示了基于共形映射的$ 1/r^α$衰减规则,这与同质腔中的常规Hankel功能分布根本不同。在实验上,基于有效的培养基理论实现了截短的OBH腔,并且在微波光谱中测量了Q因子增强和紧密限制的WGM场,这与理论结果非常一致。通过共形映射,圆形OBH腔进一步应用于任意形状的腔体,包括具有高Q因子的单核和多核结构。可以将OBH腔设计策略推广到各种波系统的谐振模式,例如声学和弹性波,并在能量收集和光电上找到应用。
Whispering gallery mode (WGM) cavity is important for exploring physics of strong light-matter interaction. Yet it suffers from the notorious radiation loss universally due to the light tunneling effect through the curved boundary. In this work, we propose and demonstrate an optical black hole (OBH) cavity based on transformation optics. The radiation loss of all WGMs in OBH cavity is completely inhibited by an infinite wide potential barrier. Besides, the WGM field outside the cavity is revealed to follow $1/r^α$ decay rule based on conformal mapping, which is fundamentally different from the conventional Hankel-function distributions in a homogeneous cavity. Experimentally, a truncated OBH cavity is achieved based on the effective medium theory, and both the Q-factor enhancement and tightly confined WGM field are measured in the microwave spectra which agree well with the theoretical results. The circular OBH cavity is further applied to the arbitrary-shaped cavities including single-core and multi-core structures with high-Q factor via the conformal mapping. The OBH cavity design strategy can be generalized to resonant modes of various wave systems, such as acoustic and elastic waves, and finds applications in energy harvesting and optoelectronics.