| Literature DB >> 27080194 |
Mauro Brotons-Gisbert1, Daniel Andres-Penares1, Joonki Suh2, Francisco Hidalgo3, Rafael Abargues4, Pedro J Rodríguez-Cantó4, Alfredo Segura1, Ana Cros1, Gerard Tobias5, Enric Canadell5, Pablo Ordejón3, Junqiao Wu2, Juan P Martínez-Pastor1, Juan F Sánchez-Royo1.
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.Entities:
Keywords: Two-dimensional materials; band gap engineering; indium selenide; microphotoluminescence; nanotexturing; optical properties
Year: 2016 PMID: 27080194 DOI: 10.1021/acs.nanolett.6b00689
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189