Quantum Interference with Single Molecules: Steps Towards a Competitive Single-Photon Source

R. Duquennoy, M. Colautti, P. Lombardi, R. Emadi, C. Toninelli
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Abstract

Single molecules of polyaromatic hydrocarbons (PAH) in suitable host matrices are known for emitting with high quantum efficiency in very narrow and stable zero-phonon lines (ZPL) [1]. For our experiments we used dibenzotherrylene (DBT) molecule inserted as impurity in anthracene (Ac) nanocrystals, dispersed on a gold substrate and cooled down to 3 K in a closed-cycle cryostat. DBT in Ac features a single-photon dipole-allowed transition around 784 nm. Each molecule is namely identical but environmental conditions like local trapped charges or crystal strain can shift the frequency of its transition in a range of approximately 1 nm [2]. Those static differences alongside any instantaneous interaction with the environment can degrade the ability of the emitted photons to undergo two-photon interference (TPI).
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单分子的量子干涉:迈向竞争单光子源的步骤
已知在合适的宿主基质中的多芳烃(PAH)单分子可以在非常窄和稳定的零声子线(ZPL)中以高量子效率发射[1]。在我们的实验中,我们将二苯并二甲苯(DBT)分子作为杂质插入到蒽(Ac)纳米晶体中,分散在金衬底上,并在闭式低温恒温器中冷却至3k。交流DBT的特点是单光子偶极允许在784 nm左右跃迁。每个分子都是相同的,但局部捕获电荷或晶体应变等环境条件可以在大约1 nm的范围内改变其跃迁频率[2]。这些静态差异以及与环境的任何瞬时相互作用都会降低发射光子的双光子干涉(TPI)能力。
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