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  5. Nanotexturing To Enhance Photoluminescent Response of Atomically Thin Indium Selenide with Highly Tunable Band Gap

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Article
en
2016

Nanotexturing To Enhance Photoluminescent Response of Atomically Thin Indium Selenide with Highly Tunable Band Gap

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en
2016
Vol 16 (5)
Vol. 16
DOI: 10.1021/acs.nanolett.6b00689

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Junqiao Wu
Junqiao Wu

University of California, Berkeley

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Mauro Brotóns-Gisbert
Daniel Andres‐Penares
Joonki Suh
+11 more

Abstract

Manipulating properties of matter at the nanoscale is the essence of nanotechnology, which has enabled the realization of quantum dots, nanotubes, metamaterials, and two-dimensional materials with tailored electronic and optical properties. Two-dimensional semiconductors have revealed promising perspectives in nanotechnology. However, the tunability of their physical properties is challenging for semiconductors studied until now. Here we show the ability of morphological manipulation strategies, such as nanotexturing or, at the limit, important surface roughness, to enhance light absorption and the luminescent response of atomically thin indium selenide nanosheets. Besides, quantum-size confinement effects make this two-dimensional semiconductor to exhibit one of the largest band gap tunability ranges observed in a two-dimensional semiconductor: from infrared, in bulk material, to visible wavelengths, at the single layer. These results are relevant for the design of new optoelectronic devices, including heterostructures of two-dimensional materials with optimized band gap functionalities and in-plane heterojunctions with minimal junction defect density.

How to cite this publication

Mauro Brotóns-Gisbert, Daniel Andres‐Penares, Joonki Suh, Francisco Hidalgo, Rafael Abargues, Pedro J. Rodríguez-Cantó, A. Segura, A. Cros, Gerard Tobías, Enric Cañadell, Pablo Ordejón, Junqiao Wu, Juan P. Martínez‐Pastor, Juan F. Sánchez‐Royo (2016). Nanotexturing To Enhance Photoluminescent Response of Atomically Thin Indium Selenide with Highly Tunable Band Gap. , 16(5), DOI: https://doi.org/10.1021/acs.nanolett.6b00689.

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Publication Details

Type

Article

Year

2016

Authors

14

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1021/acs.nanolett.6b00689

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