论文标题
原子薄等离子体纳米结构中的两光子自发发射
Two-photon spontaneous emission in atomically thin plasmonic nanostructures
论文作者
论文摘要
在几个光子水平上利用光 - 物质相互作用的能力在量子技术中起关键作用。单光子 - 最基本的光 - 可以在原子状态和固态发射器中生成点播。两光子状态也是关键的量子资产,但是在单个发射器中实现它们是具有挑战性的,因为它们的发电速率比竞争一光量流程要慢得多。我们证明,原子较薄的等离激元纳米结构可以利用两光自发的自发排放,从而产生巨大的远场两光量生产,有大量的共鸣模式可实现量身定制的光子和等离子式的状态,以及Plasmon辅助的单光子量产生比标准的单位效率更高的单次效率。我们揭示了两光子自发发射通道,并表明它们的光谱线形状来自Fano和Lorentzian共振之间的复杂相互作用。增强了二维纳米结构中的两光子自发发射,为芯片量子信息处理和自由空间量子通信的替代有效的轻质纠缠源铺平了道路。
The ability to harness light-matter interactions at the few-photon level plays a pivotal role in quantum technologies. Single photons - the most elementary states of light - can be generated on-demand in atomic and solid state emitters. Two-photon states are also key quantum assets, but achieving them in individual emitters is challenging because their generation rate is much slower than competing one-photon processes. We demonstrate that atomically thin plasmonic nanostructures can harness two-photon spontaneous emission, resulting in giant far-field two-photon production, a wealth of resonant modes enabling tailored photonic and plasmonic entangled states, and plasmon-assisted single-photon creation orders of magnitude more efficient than standard one-photon emission. We unravel the two-photon spontaneous emission channels and show that their spectral line-shapes emerge from an intricate interplay between Fano and Lorentzian resonances. Enhanced two-photon spontaneous emission in two-dimensional nanostructures paves the way to an alternative efficient source of light-matter entanglement for on-chip quantum information processing and free-space quantum communications.