论文标题
基于二聚体纳米棒结构的光学超模型定向天线
Optical ultracompact directional antenna based on a dimer nanorod structure
论文作者
论文摘要
控制光学发射器的方向性对于它们在通信和生物传感设备中的应用至关重要。已证明金属纳米ant纳斯会影响附近发射器的激发和排放特性,包括其排放的方向性。在这方面,在可见范围内已证明了基于Yagi-Uda设计的光学定向纳米ant。尽管有这种令人印象深刻的概念证明,但它们的总体规模和相当数量的元素代表了在纳米光子应用中剥削这些天线的障碍,并将其掺入光子芯片上。为了应对这些挑战,我们研究了另一种设计。特别是,我们基于两个平行的金纳米棒(并排二聚体),数值证明了超校准光学天线的单向性。我们的结果表明,放置在近场中的发射极会激发反相模式会导致单向发射。此外,为了验证该设计的可行性,我们研究了对几个参数的方向性的影响,例如纳米棒的形状,二聚体组装中的可能缺陷以及发射极方向的不同位置和方向。我们得出的结论是,这种设计对变化是可靠的,使其在实验上可以实现。
Controlling directionality of optical emitters is of utmost importance for their application in communication and biosensing devices. Metallic nanoantennas have been proven to affect both excitation and emission properties of nearby emitters, including directionality of their emission. In this regard, optical directional nanoantennas based on a Yagi-Uda design have been demonstrated in the visible range. Despite this impressive proof of concept, their overall size and considerable number of elements represent obstacles for the exploitation of these antennas in nanophotonic applications and for their incorporation onto photonic chips. In order to address these challenges, we investigate an alternative design. In particular, we numerically demonstrate unidirectionality of an ultracompact optical antenna based on two parallel gold nanorods (side-by-side dimer). Our results show that exciting the antiphase mode by an emitter placed in the near-field can lead to unidirectional emission. Furthermore, in order to verify the feasibility of this design, we study the effect on the directionality of several parameters such as shape of the nanorods, possible defects in dimer assembly, and different position and orientation of the emitter. We conclude that this design is robust to changes, making it experimentally achievable.