Title
High open circuit voltages in pin-type perovskite solar cells through strontium addition
Date Issued
01 January 2019
Access level
open access
Resource Type
journal article
Author(s)
Caprioglio P.
Zu F.
Wolff C.M.
Márquez Prieto J.A.
Stolterfoht M.
Becker P.
Koch N.
Unold T.
Albrecht S.
Neher D.
Institute for Silicon Photovoltaics
Publisher(s)
Royal Society of Chemistry
Abstract
The incorporation of even small amounts of strontium (Sr) into lead-base hybrid quadruple cation perovskite solar cells results in a systematic increase of the open circuit voltage (V oc ) in pin-type perovskite solar cells. We demonstrate via absolute and transient photoluminescence (PL) experiments how the incorporation of Sr significantly reduces the non-radiative recombination losses in the neat perovskite layer. We show that Sr segregates at the perovskite surface, where it induces important changes of morphology and energetics. Notably, the Sr-enriched surface exhibits a wider band gap and a more n-type character, accompanied with significantly stronger surface band bending. As a result, we observe a significant increase of the quasi-Fermi level splitting in the neat perovskite by reduced surface recombination and more importantly, a strong reduction of losses attributed to non-radiative recombination at the interface to the C 60 electron-transporting layer. The resulting solar cells exhibited a V oc of 1.18 V, which could be further improved to nearly 1.23 V through addition of a thin polymer interlayer, reducing the non-radiative voltage loss to only 110 meV. Our work shows that simply adding a small amount of Sr to the precursor solutions induces a beneficial surface modification in the perovskite, without requiring any post treatment, resulting in high efficiency solar cells with power conversion efficiency (PCE) up to 20.3%. Our results demonstrate very high V oc values and efficiencies in Sr-containing quadruple cation perovskite pin-type solar cells and highlight the imperative importance of addressing and minimizing the recombination losses at the interface between perovskite and charge transporting layer.
Start page
550
End page
563
Volume
3
Issue
2
Language
English
OCDE Knowledge area
Ingeniería de materiales Nano-materiales
Scopus EID
2-s2.0-85060828836
Source
Sustainable Energy and Fuels
ISSN of the container
23984902
Sponsor(s)
S. A. acknowledges funding from the German Federal Ministry of Education and Research (BMBF), within the project “Mate-rialforschung für die Energiewende” (grant no. 03SF0540), and the German Federal Ministry for Economic Affairs and Energy (BMWi) through the “PersiST” project (grant no. 0324037C). Additional funding came from HyPerCells (a Joint Graduate School of the Potsdam University and the HZB) and the German Research Foundation (DFG) within the collaborative research center 951 “Hybrid Inorganic/Organic Systems for OptoElectronics (HIOS)”. We thank RTG Mikroanalyse GmbH, Schwarzschildstraße 1, 12489 Berlin for performing the SIMS measurements. The authors thank Sebastián Caicedo-Dávila and Dr Ulrich Hörmann for fruitful discussions. Universität Potsdam - UP Bundesministerium für Wirtschaft und Energie - 0324037C - BMWi
Sources of information: Directorio de Producción Científica Scopus