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Bulky Cations Improve Band Alignment and Efficiency in Sn-Based Perovskite Solar Cells

39 Pages Posted: 8 Apr 2020 Publication Status: Review Complete

See all articles by Deepak Thrithamarassery Gangadharan

Deepak Thrithamarassery Gangadharan

University of Quebec at Montreal (UQAM) - Institut National de la Recherche Scientifique (INRS)

David A. Valverde-Chávez

Georgia Institute of Technology - School of Chemistry and Biochemistry

Andres-Felipe Castro-Mendez

Georgia Institute of Technology - School of Materials Science and Engineering

Vivek Prakash

Georgia Institute of Technology - School of Materials Science and Engineering

Ricardo Izquierdo

University of Quebec at Montreal (UQAM)

Carlos Silva

Georgia Institute of Technology - School of Chemistry and Biochemistry

Dongling Ma

University of Quebec at Montreal (UQAM) - Institut National de la Recherche Scientifique (INRS)

Juan-Pablo Correa-Baena

Georgia Institute of Technology - School of Materials Science and Engineering

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Abstract

The commercial feasibility of perovskite solar cells (PSCs) is not guaranteed as long as lead (Pb) is present in the active material, halide perovskites. Mixed halide Tin (Sn)-based alloyed perovskites with optimal band gaps ranging from 1.15 to 3.55 eV are excellent alternatives to Pb-based perovskites. In this work, we find that the addition of bulky phenylethyl ammonium (PEA) cation in the precursor solution leads to improved solar cell performance and optoelectronic properties. A prolonged laser exposure is found to induce a redshift the sample absorption for the control and no shift for the PEA-added sample, as shown by transient absorption spectroscopy. Further, we show that the addition of PEA improves band alignment of the perovskite with phenyl-C61-butyric acid methyl ester (PCBM), which aids in electron injection and therefore increases photocurrents in solar cells. These results show that PEA addition suppresses halide segregation improving material stability, charge collection at perovskite/electron transport layer, and recombination dynamics in perovskite material. As a result, the PEA-containing Sn-rich PSCs exhibited a champion efficiency of 13% with a high open-circuit voltage of 0.77 V and improved current-voltage hysteretic behavior. These results shed light on the importance of halide segregation and band alignment when designing lead-free PSCs.

Keywords: perovskite solar cells, lead free halide perovskites, photovoltaics, band energetics, interfaces

Suggested Citation

Thrithamarassery Gangadharan, Deepak and Valverde-Chávez, David A. and Castro-Mendez, Andres-Felipe and Prakash, Vivek and Izquierdo, Ricardo and Silva, Carlos and Ma, Dongling and Correa-Baena, Juan-Pablo, Bulky Cations Improve Band Alignment and Efficiency in Sn-Based Perovskite Solar Cells. Available at SSRN: https://ssrn.com/abstract=3564995 or http://dx.doi.org/10.2139/ssrn.3564995
This version of the paper has not been formally peer reviewed.

Deepak Thrithamarassery Gangadharan

University of Quebec at Montreal (UQAM) - Institut National de la Recherche Scientifique (INRS)

385, rue Sherbrooke est
Montréal, QUÉBEC H2X 1E3
Canada

David A. Valverde-Chávez

Georgia Institute of Technology - School of Chemistry and Biochemistry

United States

Andres-Felipe Castro-Mendez

Georgia Institute of Technology - School of Materials Science and Engineering

United States

Vivek Prakash

Georgia Institute of Technology - School of Materials Science and Engineering

United States

Ricardo Izquierdo

University of Quebec at Montreal (UQAM)

PB 8888 Station DownTown
Succursale Centre Ville
Montreal, Quebec H3C3P8
Canada

Carlos Silva

Georgia Institute of Technology - School of Chemistry and Biochemistry

United States

Dongling Ma

University of Quebec at Montreal (UQAM) - Institut National de la Recherche Scientifique (INRS)

385, rue Sherbrooke est
Montréal, QUÉBEC H2X 1E3
Canada

Juan-Pablo Correa-Baena (Contact Author)

Georgia Institute of Technology - School of Materials Science and Engineering ( email )

Atlanta, GA 30332
United States

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