Laboratory of Physical Chemistry, ETH Zurich, 8093 Zurich, Switzerland.
Phys Rev Lett. 2012 Mar 2;108(9):093601. doi: 10.1103/PhysRevLett.108.093601. Epub 2012 Feb 27.
Efficient interaction of light and matter at the ultimate limit of single photons and single emitters is of great interest from a fundamental point of view and for emerging applications in quantum engineering. However, the difficulty of generating single-photon streams with specific wavelengths, bandwidths, and power as well as the weak interaction probability of a single photon with an optical emitter pose a formidable challenge toward this goal. Here, we demonstrate a general approach based on the creation of single photons from a single emitter and their use for performing spectroscopy on a second emitter situated at a distance. While this first proof of principle realization uses organic molecules as emitters, the scheme is readily extendable to quantum dots and color centers. Our work ushers in a new line of experiments that provide access to the coherent and nonlinear couplings of few emitters and few propagating photons.
在单光子和单发射器的极限下实现光与物质的高效相互作用,无论从基础研究的角度还是从新兴的量子工程应用的角度来看,都具有重要的意义。然而,要产生具有特定波长、带宽和功率的单光子流,以及单个光子与光发射器的弱相互作用概率,这是一个巨大的挑战。在这里,我们展示了一种基于单个发射器产生单个光子并将其用于对远距离的第二个发射器进行光谱分析的通用方法。虽然这一原理验证的首次实现使用有机分子作为发射器,但该方案很容易扩展到量子点和色心。我们的工作开创了一系列新的实验,使人们能够实现少数发射器和少数传播光子的相干和非线性耦合。