Winger Martin, Badolato Antonio, Hennessy Kevin J, Hu Evelyn L, Imamoğlu Ataç
Insitute of Quantum Electronics, ETH Zurich, 8093 Zurich, Switzerland.
Phys Rev Lett. 2008 Nov 28;101(22):226808. doi: 10.1103/PhysRevLett.101.226808. Epub 2008 Nov 25.
We show how cavity quantum electrodynamics using a tunable photonic crystal nanocavity in the strong-coupling regime can be used for single quantum dot spectroscopy. From the distinctive avoided crossings observed in the strongly coupled system we can identify the neutral and single positively charged exciton as well as the biexciton transitions. Moreover we are able to investigate the fine structure of those transitions and to identify a novel cavity mediated mixing of bright and dark exciton states, where the hyperfine interactions with lattice nuclei presumably play a key role. These results are enabled by a deterministic coupling scheme which allowed us to achieve unprecedented coupling strengths in excess of 150 microeV.
我们展示了如何将处于强耦合 regime 的可调谐光子晶体纳米腔用于单量子点光谱学。从在强耦合系统中观察到的独特避免交叉现象,我们可以识别出中性和单正电荷激子以及双激子跃迁。此外,我们能够研究这些跃迁的精细结构,并识别出一种由腔介导的明亮和暗激子态的新型混合,其中与晶格原子核的超精细相互作用可能起着关键作用。这些结果得益于一种确定性耦合方案,该方案使我们能够实现超过 150 微电子伏特的前所未有的耦合强度。