Fine tuning of Nb-incorporated TiO2 thin films by atomic layer deposition and application as efficient electron transport layer in perovskite solar cells

Author:

Vincent Thomas1ORCID,Coutancier Damien12ORCID,Dally Pia13ORCID,Al Katrib Mirella13ORCID,Frégnaux Mathieu13ORCID,Cacovich Stefania12ORCID,Donsanti Frédérique14ORCID,Yaïche Armelle14ORCID,Medjoubi Karim1ORCID,Guillemot Thomas1ORCID,Provost Marion1ORCID,Rousset Jean14ORCID,Bouttemy Muriel13ORCID,Schneider Nathanaelle12ORCID

Affiliation:

1. Institut Photovoltaïque d’Ile-de-France (IPVF) 1 , 18 boulevard Thomas Gobert, 91120 Palaiseau, France

2. CNRS, UMR 9006, Institut Photovoltaïque d’Ile-de-France (IPVF) 2 , 18 boulevard Thomas Gobert, 91120 Palaiseau, France

3. Institut Lavoisier de Versailles (ILV), Université de Versailles Saint-Quentin en Yvelines, Université Paris-Saclay, CNRS, UMR 8180 3 , 45 avenue des Etats-Unis, 78035 Versailles Cedex, France

4. EDF R&D, IPVF 4 , 18 boulevard Thomas Gobert, 91120 Palaiseau, France

Abstract

Access to finely tuned thin films that can act as electron transport layer (ETL) and adapt to the absorber composition and whole cell fabrication process is key to achieve efficient perovskite-based solar cells. In this study, the growth of mixed niobium-titanium oxide (Nb-TiO2) thin films by atomic layer deposition and its use to extract photogenerated electrons is reported. Films were obtained at 200 °C from titanium (IV) i-propoxide, (t-butylimido)tris(diethylamido)niobium(V), and water by introducing Nb2O5 growth cycle in a TiO2 matrix. Process parameters (order of precursor introduction, cycle ratio) were optimized; the growth mechanism and the effective Nb incorporation were investigated by an in situ quartz crystal microbalance and x-ray photoelectron spectroscopy. The composition, morphology, structural, and optoelectronic properties of the as-deposited films were determined using a variety of characterization techniques. As a result, a fine control of the film properties (between TiO2 and Nb2O5 ones) could be achieved by tuning Nb content. To allow a successful implementation in solar devices, a comprehensive annealing study under several conditions (temperatures, various atmospheres) was conducted leading to an evolution of the optical properties due to a morphological change. Ultimately, the incorporation of these 15 nm-thick films in mesoscopic perovskite solar cells as ETL shows an improvement of the cell performances and of their stability with increasing Nb content, in comparison of both TiO2 and Nb2O5 pure compounds, reaching power conversion efficiency up to 18.3% and a stability above 80% of its nominal value after 138 h under illumination.

Funder

Agence Nationale de la Recherche

Publisher

American Vacuum Society

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