Thickness-Tunable Self-Assembled Colloidal Nanoplatelet Films Enable Ultrathin Optical Gain Media

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Date

2020

Journal Title

Journal ISSN

Volume Title

Publisher

Amer Chemical Soc

Open Access Color

BRONZE

Green Open Access

Yes

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3

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113

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No
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Abstract

We propose and demonstrate construction of highly uniform, multilayered superstructures of CdSe/CdZnS core/shell colloidal nanoplatelets (NPLs) using liquid interface self-assembly. These NPLs are sequentially deposited onto a solid substrate into slabs having monolayer-precise thickness across tens of cm(2) areas. Because of near-unity surface coverage and excellent uniformity, amplified spontaneous emission (ASE) is observed from an uncharacteristically thin film having 6 NPL layers, corresponding to a mere 42 nm thickness. Furthermore, systematic studies on optical gain of these NPL superstructures having thicknesses ranging from 6 to 15 layers revealed the gradual reduction in gain threshold with increasing number of layers, along with a continuous spectral shift of the ASE peak (similar to 18 nm). These observations can be explained by the change in the optical mode confinement factor with the NPL waveguide thickness and propagation wavelength. This bottom-up construction technique for thickness-tunable, three-dimensional NPL superstructures can be used for large-area device fabrication.

Description

Demir, Hilmi Volkan/0000-0003-1793-112X; Erdem, Onur/0000-0003-2212-965X; Foroutan Barenji, Sina/0000-0003-0623-8987;

Keywords

Liquid Interface Self-Assembly, Colloidal Nanoplatelets, Planar Waveguides, Optical Gain, Amplified Spontaneous Emission, Planar waveguides, planar waveguides, liquid interface self-assembly, Science::Physics::Optics and light, Optical gain, 540, colloidal nanoplatelets, Liquid interface self-assembly, 620, amplified spontaneous emission, Liquid Interface Self-assembly, Colloidal Nanoplatelets, Colloidal nanoplatelets, Amplified spontaneous emission, :Physics::Optics and light [Science], optical gain

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Fields of Science

02 engineering and technology, 0210 nano-technology

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
50

Source

Nano Letters

Volume

20

Issue

9

Start Page

6459

End Page

6465
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CrossRef : 32

Scopus : 59

PubMed : 3

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Mendeley Readers : 69

SCOPUS™ Citations

59

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Web of Science™ Citations

53

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3

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