Nature Communications · 2014 · 408 citations · 21 references
The spin of light in subwavelength-diameter waveguides can be orthogonal to the propagation direction due to strong transverse confinement, and this transverse spin reverses sign when the propagation direction is reversed. Using this effect, we demonstrate directional spontaneous emission of photons by laser‑trapped caesium atoms into an optical nanofibre and control their propagation direction via the atomic excited state. We achieve this by trapping caesium atoms near an optical nanofibre and exploiting the spin–momentum locking of guided modes to steer emitted photons into a chosen direction. We tune the spontaneous emission into counter‑propagating guided modes from symmetric to strongly asymmetric, launching more than half of the optical power into one direction, and anticipate significant implications for quantum nanophotonics and integrated optical signal processing in the quantum regime.
Abstract The spin of light in subwavelength-diameter waveguides can be orthogonal to the propagation direction of the photons because of the strong transverse confinement. This transverse spin changes sign when the direction of propagation is reversed. Using this effect, we demonstrate the directional spontaneous emission of photons by laser-trapped caesium atoms into an optical nanofibre and control their propagation direction by the excited state of the atomic emitters. In particular, we tune the spontaneous emission into the counter-propagating guided modes from symmetric to strongly asymmetric, where more than "Equation missing"<!-- image only, no MathML or LaTex -->% of the optical power is launched into one or the other direction. We expect our results to have important implications for research in quantum nanophotonics and for implementations of integrated optical signal processing in the quantum regime.
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Polarization-Controlled Tunable Directional Coupling of Surface Plasmon Polaritons
Jiao Lin, J. P. Balthasar Mueller, Qian Wang et al. · Science · 2013 · 1.2K citations