论文标题
条件量子等离子体传感
Conditional Quantum Plasmonic Sensing
论文作者
论文摘要
使用弱光学信号执行精致样品的传感的可能性构成了量子光子传感的主要目标之一。此外,通过表面等离子体极化子在光子平台中电磁近场的纳米级限制激发了高度敏感的量子等离子传感器的发展。尽管等离激元平台具有传感的巨大潜力,但该类别的传感器最终受到表面等离子体的量子统计波动的限制。实际上,电磁场的波动严重限制了使用弱近场信号对细腻样品进行表征的量子等离子体传感平台的性能。此外,与等离子体场相关的固有损失征收了其他约束,这些损失挑战了超出射击限制的敏感性的实现。在这里,我们基于等离子的条件检测引入了一种用于量子等离子体传感的方案。我们证明,血浆场通过等离子体扣除的条件检测提供了控制等离子场量子波动的新自由度。该机制可改善依靠与其相关场波动相当的等离子信号的光子传感器的信噪比。因此,使用弱等离子信号感知样品的可能性,同时保留样品特性,对分子传感和化学检测具有重要意义。
The possibility of using weak optical signals to perform sensing of delicate samples constitutes one of the main goals of quantum photonic sensing. Furthermore, the nanoscale confinement of electromagnetic near fields in photonic platforms through surface plasmon polaritons has motivated the development of highly sensitive quantum plasmonic sensors. Despite the enormous potential of plasmonic platforms for sensing, this class of sensors is ultimately limited by the quantum statistical fluctuations of surface plasmons. Indeed, the fluctuations of the electromagnetic field severely limit the performance of quantum plasmonic sensing platforms in which delicate samples are characterized using weak near-field signals. Furthermore, the inherent losses associated with plasmonic fields levy additional constraints that challenge the realization of sensitivities beyond the shot-noise limit. Here, we introduce a protocol for quantum plasmonic sensing based on the conditional detection of plasmons. We demonstrate that the conditional detection of plasmonic fields, via plasmon subtraction, provides a new degree of freedom to control quantum fluctuations of plasmonic fields. This mechanism enables improvement of the signal-to-noise ratio of photonic sensors relying on plasmonic signals that are comparable to their associated field fluctuations. Consequently, the possibility of using weak plasmonic signals to sense delicate samples, while preserving the sample properties, has important implications for molecule sensing, and chemical detection .