Compact Plasmonic Distributed-Feedback Lasers as Dark Sources of Surface Plasmon Polaritons


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Date

2021-06-22

Publication Type

Journal Article

ETH Bibliography

yes

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Abstract

Plasmonic modes in optical cavities can be amplified through stimulated emission. Using this effect, plasmonic lasers can potentially provide chip-integrated sources of coherent surface plasmon polaritons (SPPs). However, while plasmonic lasers have been experimentally demonstrated, they have not generated propagating plasmons as their primary output signal. Instead, plasmonic lasers typically involve significant emission of free-space photons that are intentionally outcoupled from the cavity by Bragg diffraction or that leak from reflector edges due to uncontrolled scattering. Here, we report a simple cavity design that allows for straightforward extraction of the lasing mode as SPPs while minimizing photon leakage. We achieve plasmonic lasing in 10-μm-long distributed-feedback cavities consisting of a Ag surface periodically patterned with ridges coated by a thin layer of colloidal semiconductor nanoplatelets as the gain material. The diffraction to free-space photons from cavities designed with second-order feedback allows a direct experimental examination of the lasing-mode profile in real- and momentum-space, in good agreement with coupled-wave theory. In contrast, we demonstrate that first-order-feedback cavities remain “dark” above the lasing threshold and the output signal leaves the cavity as propagating SPPs, highlighting the potential of such lasers as on-chip sources of plasmons.

Publication status

published

Editor

Book title

Journal / series

Volume

15 (6)

Pages / Article No.

9935 - 9944

Publisher

American Chemical Society

Event

Edition / version

Methods

Software

Geographic location

Date collected

Date created

Subject

plasmonic laser; distributed feedback; spaser; surface-relief gratings; semiconductor nanoplatelets; plasmonics

Organisational unit

03875 - Norris, David J. / Norris, David J. check_circle

Notes

Funding

165559 - Optical Strong Coupling in Colloidal Quantum Dots (SNF)
339905 - Quantum-Dot Plasmonics and Spasers (EC)

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