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How Transparent Oxides Gain Some Color: Discovery of a CeNiO3 Reduced Bandgap Phase As an Absorber for Photovoltaics.
Barad, Hannah-Noa; Keller, David A; Rietwyk, Kevin J; Ginsburg, Adam; Tirosh, Shay; Meir, Simcha; Anderson, Assaf Y; Zaban, Arie.
Afiliação
  • Barad HN; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Keller DA; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Rietwyk KJ; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Ginsburg A; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Tirosh S; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Meir S; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Anderson AY; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
  • Zaban A; Department of Chemistry, Center for Nanotechnology & Advanced Materials , Bar Ilan University , 5290002 Ramat Gan , Israel.
ACS Comb Sci ; 20(6): 366-376, 2018 06 11.
Article em En | MEDLINE | ID: mdl-29718654
ABSTRACT
In this work, we describe the formation of a reduced bandgap CeNiO3 phase, which, to our knowledge, has not been previously reported, and we show how it is utilized as an absorber layer in a photovoltaic cell. The CeNiO3 phase is prepared by a combinatorial materials science approach, where a library containing a continuous compositional spread of Ce xNi1- xO y is formed by pulsed laser deposition (PLD); a method that has not been used in the past to form Ce-Ni-O materials. The library displays a reduced bandgap throughout, calculated to be 1.48-1.77 eV, compared to the starting materials, CeO2 and NiO, which each have a bandgap of ∼3.3 eV. The materials library is further analyzed by X-ray diffraction to determine a new crystalline phase. By searching and comparing to the Materials Project database, the reduced bandgap CeNiO3 phase is realized. The CeNiO3 reduced bandgap phase is implemented as the absorber layer in a solar cell and photovoltages up to 550 mV are achieved. The solar cells are also measured by surface photovoltage spectroscopy, which shows that the source of the photovoltaic activity is the reduced bandgap CeNiO3 phase, making it a viable material for solar energy.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Óxidos / Cério / Ligas / Níquel Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Óxidos / Cério / Ligas / Níquel Idioma: En Ano de publicação: 2018 Tipo de documento: Article