: Dye-sensitized solar cells assembled with aqueous electrolytes are emerging as a sustainable photovoltaic technology suitable for safe indoor and portable electronics use. While the scientific community is exploring unconventional materials for preparing electrodes and electrolytes, this work presents the first study on zinc oxide as a semiconductor material to fabricate photoanodes for aqueous solar cells. Different morphologies (i.e., nanoparticles, multipods, and desert roses) are synthesized, characterized, and tested in laboratory-scale prototypes. This exploratory work, also integrated by a computational study and a multivariate investigation on the factors that influence electrode sensitization, confirms the possibility of using zinc oxide in the field of aqueous photovoltaics and opens the way to new morphologies and processes of functionalization or surface activation to boost the overall cell efficiency.

Exploring zinc oxide morphologies for aqueous solar cells by a photoelectrochemical, computational, and multivariate approach / Maruccia, Elisa; Galliano, Simone; Schiavo, Eduardo; Garino, Nadia; Segura Zarate, Ana Y.; Munoz Garcia, Ana Belen; Pavone, Michele; Gerbaldi, Claudio; Barolo, Claudia; Cauda, Valentina; Bella, Federico. - In: ENERGY ADVANCES. - ISSN 2753-1457. - 3:5(2024), pp. 1062-1072. [10.1039/d4ya00010b]

Exploring zinc oxide morphologies for aqueous solar cells by a photoelectrochemical, computational, and multivariate approach

Schiavo, Eduardo;Munoz Garcia, Ana Belen;Pavone, Michele;
2024

Abstract

: Dye-sensitized solar cells assembled with aqueous electrolytes are emerging as a sustainable photovoltaic technology suitable for safe indoor and portable electronics use. While the scientific community is exploring unconventional materials for preparing electrodes and electrolytes, this work presents the first study on zinc oxide as a semiconductor material to fabricate photoanodes for aqueous solar cells. Different morphologies (i.e., nanoparticles, multipods, and desert roses) are synthesized, characterized, and tested in laboratory-scale prototypes. This exploratory work, also integrated by a computational study and a multivariate investigation on the factors that influence electrode sensitization, confirms the possibility of using zinc oxide in the field of aqueous photovoltaics and opens the way to new morphologies and processes of functionalization or surface activation to boost the overall cell efficiency.
2024
Exploring zinc oxide morphologies for aqueous solar cells by a photoelectrochemical, computational, and multivariate approach / Maruccia, Elisa; Galliano, Simone; Schiavo, Eduardo; Garino, Nadia; Segura Zarate, Ana Y.; Munoz Garcia, Ana Belen; Pavone, Michele; Gerbaldi, Claudio; Barolo, Claudia; Cauda, Valentina; Bella, Federico. - In: ENERGY ADVANCES. - ISSN 2753-1457. - 3:5(2024), pp. 1062-1072. [10.1039/d4ya00010b]
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/985184
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 23
  • ???jsp.display-item.citation.isi??? 24
social impact