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Hybrid optical antenna with high directivity gain

机译:具有高方向性增益的混合光学天线

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摘要

Coupling of a far-field optical mode to electronic states of a quantum absorber or emitter is a crucial process in many applications, including infrared sensors, single molecule spectroscopy, and quantum metrology. In particular, achieving high quantum efficiency for a system with a deep subwavelength quantum absorber/emitter has remained desirable. In this Letter, a hybrid optical antenna based on coupling of a photonic nanojet to a metallo-dielectric antenna is proposed, which allows such efficient coupling. A quantum efficiency of about 50% is predicted for a semiconductor with volume of ~λ~3/170. Despite the weak optical absorption coefficient of 2000 cm~(-1) in the long infrared wavelength of ~8 μm, very strong far-field coupling has been achieved, as evidenced by an axial directivity gain of 16 dB, which is only 3 dB below of theoretical limit. Unlike the common phased array antenna, this structure does not require coherent sources to achieve a high directivity. The quantum efficiency and directivity gain are more than an order of magnitude higher than existing metallic, dielectric, or metallo-dielectric optical antenna.
机译:在包括红外传感器,单分子光谱学和量子计量学在内的许多应用中,将远场光学模式耦合到量子吸收器或发射器的电子状态是至关重要的过程。特别地,对于具有深亚波长量子吸收体/发射体的系统实现高量子效率仍然是期望的。在这封信中,提出了一种基于光子纳米射流与金属电介质天线耦合的混合光学天线,它可以实现这种高效耦合。对于体积约为λ〜3/170的半导体,预计其量子效率约为50%。尽管在〜8μm的长红外波长中光吸收系数很弱(2000 cm〜(-1)),但仍实现了非常强的远场耦合,如轴向指向性增益为16 dB所证明的那样,仅为3 dB低于理论极限。与普通相控阵天线不同,该结构不需要相干源即可实现高方向性。量子效率和方向性增益比现有的金属,介电或金属介电光学天线高出一个数量级。

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