Optical and electrical features of calcium molybdate scheelite solar cells

Journal Article (2023)
Author(s)

Ananda Ramires das Neves Stigger (Federal University of Pelotas)

V. Hernandes (Kavli institute of nanoscience Delft, Federal University of Pelotas, TU Delft - QN/Greplová Lab)

Mateus Meneghetti Ferrer (Federal University of Pelotas)

Mario Lucio Moreira (Federal University of Pelotas)

Research Group
QN/Greplová Lab
Copyright
© 2023 Ananda Ramires das Neves Stigger, V. Fonseca Hernandes, Mateus Meneghetti Ferrer, Mario Lucio Moreira
DOI related publication
https://doi.org/10.1039/d3nj01434g
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Ananda Ramires das Neves Stigger, V. Fonseca Hernandes, Mateus Meneghetti Ferrer, Mario Lucio Moreira
Research Group
QN/Greplová Lab
Issue number
26
Volume number
47
Pages (from-to)
12458-12467
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Abstract

Calcium molybdate (CMO) is a material used in several technological applications. In this work, we explored the correlation between the optical and electrical properties of CMO in solar cell photoanodes. Six samples were prepared by a microwave-assisted hydrothermal method with pH values of 4, 7, and 10 associated with temperatures of 100 °C and 140 °C. These samples were used as a replacement for titanium dioxide TiO
2 in Graetzel solar cells. A thin blocking layer (BL), a dense and translucent film, was deposited over a CMO layer using a doctor-blade method, to create a heterojunction. We show that a strict correlation between pH, temperature, processing time, and photovoltaic response exists in CMO scheelite and needs to be considered to achieve optimal photovoltaic behavior. Almost all samples achieved typical solar cell responses, except that synthesized with pH 4 at 100 °C, which shows an anomalous behavior. Among these samples, the one synthesized with pH 10 at 100 °C was identified as the most suitable candidate for down-converter materials in solar energy applications, due to its typical diode-like properties, with an upper J
sc = 180 μA cm
−2, V
oc = 607 mV and FF = 0.45.

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