Vakulenko Anton, Kiriushechkina Svetlana, Smirnova Daria, Guddala Sriram, Komissarenko Filipp, Alù Andrea, Allen Monica, Allen Jeffery, Khanikaev Alexander B
Electrical Engineering and Physics, The City College of New York (USA), New York, NY, 10031, USA.
ARC Centre of Excellence for Transformative Meta-Optical Systems (TMOS), Research School of Physics, The Australian National University, Canberra, ACT, 2601, Australia.
Nat Commun. 2023 Aug 2;14(1):4629. doi: 10.1038/s41467-023-40238-5.
Topological phases of matter have been attracting significant attention across diverse fields, from inherently quantum systems to classical photonic and acoustic metamaterials. In photonics, topological phases offer resilience and bring novel opportunities to control light with pseudo-spins. However, topological photonic systems can suffer from limitations, such as breakdown of topological properties due to their symmetry-protected origin and radiative leakage. Here we introduce adiabatic topological photonic interfaces, which help to overcome these issues. We predict and experimentally confirm that topological metasurfaces with slowly varying synthetic gauge fields significantly improve the guiding features of spin-Hall and valley-Hall topological structures commonly used in the design of topological photonic devices. Adiabatic variation in the domain wall profiles leads to the delocalization of topological boundary modes, making them less sensitive to details of the lattice, perceiving the structure as an effectively homogeneous Dirac metasurface. As a result, the modes showcase improved bandgap crossing, longer radiative lifetimes and propagation distances.
物质的拓扑相已在从固有量子系统到经典光子和声子超材料等不同领域引起了广泛关注。在光子学中,拓扑相具有弹性,并为利用赝自旋控制光带来了新机遇。然而,拓扑光子系统可能存在局限性,例如由于其对称保护的起源导致拓扑性质的破坏以及辐射泄漏。在此,我们引入绝热拓扑光子界面,它有助于克服这些问题。我们预测并通过实验证实,具有缓慢变化的合成规范场的拓扑超表面显著改善了拓扑光子器件设计中常用的自旋霍尔和谷霍尔拓扑结构的导光特性。畴壁轮廓的绝热变化导致拓扑边界模式的离域化,使其对晶格细节不太敏感,将该结构视为一个有效的均匀狄拉克超表面。结果,这些模式展现出更好的带隙穿越、更长的辐射寿命和传播距离。