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Cu(I)-I coordination polymers as possible substitutes of lanthanides as downshifters for increasing the conversion efficiency of solar cells

Author
López-Molina, Jesús; Hernández-Rodríguez, Cecilio; Guerrero-Lemus, Ricardo; Cantelar Alcaide, Eugenio Franciscountranslated; Lifante Pedrola, Ginésuntranslated; Muñoz, Marta; Amo Ochoa, María Pilaruntranslated
Entity
UAM. Departamento de Física de Materiales; UAM. Departamento de Química Inorgánica
Publisher
Royal Society of Chemistry
Date
2020-04-14
Citation
10.1039/D0DT00356E
Dalton Transactions 49.14 (2020): 4315-4322
 
 
 
ISSN
1477-9226 (print); 1477-9234 (online)
DOI
10.1039/D0DT00356E
Funded by
This article has been funded by the Spanish Ministerio de Economía y Competitividad (and the current Ministerio de Ciencia, Innovación y Universidades) (MAT2016-75883-C2-2-P, MAT2016-75716-C2-2-R and RTI2018-095563-B-100). This article is dedicated to J. J. Amo-Mora
Project
Gobierno de España. MAT2016-75883-C2-2-P; Gobierno de España. MAT2016-75716-C2-2-R; Gobierno de España. RTI2018-095563-B-100
Editor's Version
https://doi.org/10.1039/D0DT00356E
Subjects
Cu(i) coordination polymers; Lanthanides; Nanofibers; Photons; Química
URI
http://hdl.handle.net/10486/690771
Rights
© 2020 The Royal Society of Chemistry

Abstract

This study tries to provide new solutions to increase the efficiency of conversion of photons in solar cells, using photoluminescent Cu(I) coordination polymers (CPs) as possible alternative materials of lower cost, than those used today, based on lanthanides. The selected CP of chemical formula [Cu(NH2MeIN)I]n (NH2MeIN = methyl, 2-amino isonicotinate) absorbs in the utraviolet and emits in the visible region, being also easily nanoprocessable, by a simple and one-pot bottom-up approach. Nanofibers of this CP can be embedded in organic matrices such as ethyl vinyl acetate (EVA), forming transparent and homogenous films, with a thermal stability of up to approximately 150 °C. These new materials maintain the optical properties of the CP used as a dopant, ([Cu(NH2MeIN)I]n), with emission in yellow (570 nm) at 300 K, which is intensified when the working temperature is lowered. In addition, these materials can be prepared with varying thicknesses, from a few microns to a few hundred nanometers, depending on the deposition method used (drop casting or spin coating respectively). The study of their external quantum efficiency (EQE) found an increase in the UV range, which translates into an increase in the conversion efficiency. The optimal CP concentration is 5% by weight in order to not diminish the transparency of the composite material. The calculated cost on the possible incorporation of this material into solar cells shows a 50% decrease over the cost reported in similar studies based on the use of lanthanides
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Google™ Scholar:López-Molina, Jesús - Hernández-Rodríguez, Cecilio - Guerrero-Lemus, Ricardo - Cantelar Alcaide, Eugenio Francisco - Lifante Pedrola, Ginés - Muñoz, Marta - Amo Ochoa, María Pilar

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