Max-Planck-Institut für Quantenoptik, Hans-Kopfermann-Strasse 1, D-85748 Garching, Germany.
Nature. 2011 Jun 29;474(7353):623-6. doi: 10.1038/nature10170.
Single quantum emitters such as atoms are well known as non-classical light sources with reduced noise in the intensity, capable of producing photons one by one at given times. However, the light field emitted by a single atom can exhibit much richer dynamics. A prominent example is the predicted ability of a single atom to produce quadrature-squeezed light, which has fluctuations of amplitude or phase that are below the shot-noise level. However, such squeezing is much more difficult to observe than the emission of single photons. Squeezed beams have been generated using macroscopic and mesoscopic media down to a few tens of atoms, but despite experimental efforts, single-atom squeezing has so far escaped observation. Here we generate squeezed light with a single atom in a high-finesse optical resonator. The strong coupling of the atom to the cavity field induces a genuine quantum mechanical nonlinearity, which is several orders of magnitude larger than in typical macroscopic media. This produces observable quadrature squeezing, with an excitation beam containing on average only two photons per system lifetime. In sharp contrast to the emission of single photons, the squeezed light stems from the quantum coherence of photon pairs emitted from the system. The ability of a single atom to induce strong coherent interactions between propagating photons opens up new perspectives for photonic quantum logic with single emitters.
单量子发射器,如原子,是众所周知的非经典光源,其强度噪声降低,能够在给定的时间内逐个产生光子。然而,单个原子发射的光场可以表现出更丰富的动力学。一个突出的例子是预测单个原子产生正交压缩光的能力,其幅度或相位的涨落低于散粒噪声水平。然而,与单光子发射相比,这种压缩要困难得多。已经使用宏观和介观介质在几十到几百个原子的尺度下产生了压缩光束,但尽管进行了实验努力,单原子压缩仍然难以观察到。在这里,我们在高精细度光学谐振腔内产生了单原子压缩光。原子与腔场的强耦合诱导出真正的量子力学非线性,其量级比典型的宏观介质大几个数量级。这产生了可观测的正交压缩,激发光束在系统寿命内平均只有两个光子。与单光子发射形成鲜明对比的是,压缩光源自系统发射的光子对的量子相干性。单个原子在传播光子之间诱导强相干相互作用的能力为单发射器的光子量子逻辑开辟了新的前景。