Single-Mode Lasing From a Single 7 nm Thick Monolayer of Colloidal Quantum Wells in a Monolithic Microcavity

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Date

2021

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Volume Title

Publisher

Wiley-VCH Verlag GmbH

Open Access Color

BRONZE

Green Open Access

Yes

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40

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103

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Abstract

In this work, the first account of monolithically-fabricated vertical cavity surface emitting lasers (VCSELs) of densely-packed, orientation-controlled, atomically flat colloidal quantum wells (CQWs) using a self-assembly method and demonstrate single-mode lasing from a record thin colloidal gain medium with a film thickness of 7 nm under femtosecond optical excitation is reported. Specially engineered CQWs are used to demonstrate these hybrid CQW-VCSELs consisting of only a few layers to a single monolayer of CQWs and are achieved the lasing from these thin gain media by thoroughly modeling and implementing a vertical cavity consisting of distributed Bragg reflectors with an additional dielectric layer for mode tuning. Accurate spectral and spatial alignment of the cavity mode with the CQW films is secured with the help of full electromagnetic computations. While overcoming the long-pending problem of limited electrical conductivity in thicker colloidal films, such ultrathin colloidal gain media can be helpful to enable fully electrically-driven colloidal lasers.

Description

Foroutan Barenji, Sina/0000-0003-0623-8987; Demir, Hilmi Volkan/0000-0003-1793-112X

Keywords

Colloidal Quantum Wells, Liquid Interface Self&#8208, Assembly, Monolithic Microcavity, Single&#8208, Mode Lasing, Vertical Cavity Surface&#8208, Emitting Laser, assembly, colloidal quantum wells, emitting laser, FOS: Physical sciences, Physics - Applied Physics, Applied Physics (physics.app-ph), liquid interface self‐, Colloidal Quantum Wells, monolithic microcavity, :Physics [Science], single‐, vertical cavity surface‐, Single-mode Lasing, mode lasing, Physics - Optics, Optics (physics.optics)

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Fields of Science

02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology

Citation

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Q1

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9

Source

Laser & Photonics Reviews

Volume

15

Issue

4

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End Page

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CrossRef : 8

Scopus : 9

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9

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11

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1

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