Investigation of hydrogen induced fluorescence in C60and its potential use in luminescence down shifting applications
Autor: | Robert N. Compton, Santanab Giri, D. N. Sharp, Puru Jena, Patrick A. Ward, Jian Zhou, Joseph A. Teprovich, Josef Velten, Jonathan H. Christian, Brent Peters, J. Dixon, Ragaiy Zidan, Aaron L. Washington |
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Rok vydání: | 2016 |
Předmět: |
Fullerene
Materials science Hydrogen chemistry.chemical_element 02 engineering and technology Electronic structure 010402 general chemistry 021001 nanoscience & nanotechnology Photochemistry 01 natural sciences 0104 chemical sciences chemistry Quantum dot General Materials Science Density functional theory Emission spectrum 0210 nano-technology Luminescence Carbon |
Zdroj: | Nanoscale. 8:18760-18770 |
ISSN: | 2040-3372 2040-3364 |
DOI: | 10.1039/c6nr05998h |
Popis: | Herein the photophysical properties of hydrogenated fullerenes (fulleranes) synthesized by direct hydrogenation utilizing hydrogen pressure (100 bar) and elevated temperatures (350 °C) are compared to the fulleranes C60H18 and C60H36 synthesized by amine reduction and the Birch reduction, respectively. Through spectroscopic measurements and density functional theory (DFT) calculations of the HOMO–LUMO gaps of C60Hx (0 ≤ x ≤ 60), we show that hydrogenation significantly affects the electronic structure of C60 by decreasing conjugation and increasing sp3 hybridization. This results in a blue shift of the emission maximum as the number of hydrogen atoms attached to C60 increases. Correlations in the emission spectra of C60Hx produced by direct hydrogenation and by chemical methods also support the hypothesis of the formation of C60H18 and C60H36 during direct hydrogenation with emission maxima of 435 and 550 nm respectively. We also demonstrate that photophysical tunability, stability, and solubility of C60Hx in a variety of organic solvents make them easily adaptable for application as luminescent down-shifters in heads-up displays, light-emitting diodes, and luminescent solar concentrators. The utilizization of carbon based materials in these applications can potentially offer advantages over commonly utilized transition metal based quantum dot chromophores. We therefore propose that the controlled modification of C60 provides an excellent platform for evaluating how individual chemical and structural changes affect the photophysical properties of a well-defined carbon nanostructure. |
Databáze: | OpenAIRE |
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