A. Redinger

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Luxembourg

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Recent Grants

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How Tail states in the absorber influence and limit solar cell efficiency

Open Date: 2021-09-01

Close Date: 2024-08-01

Grant: Close

Hybrid perovskite surfaces

Open Date: 2021-06-01

Close Date: 2024-05-01

Grant: Close

Epitaxially grown Sn Perovskites

Open Date: 2020-05-01

Close Date: 2023-04-01

Grant: Close

Grain boundaries in solar cells

Open Date: 2018-07-01

Close Date: 2021-12-01

Grant: Close

Surface and Interface Science on Photovoltaic Materials

Open Date: 2017-03-01

Close Date: 2022-09-01

Articles (11)

Quantifying recombination and charge carrier extraction in halide perovskites via hyperspectral time-resolved photoluminescence imaging

Identifying sources of nonradiative recombination and quantifying charge carrier extraction in halide perovskite solar cells are important in further developing this thin-film technology. Steady-state and time-resolved photoluminescence (TRPL), in combination with analytical modeling, have emerged as non-destructive tools to achieve the desired results. However, the exact location of the recombination and charge carrier extraction losses in devices is often obscured by various competing processes when photoluminescence measurements are analyzed. Here, we show via absolute-photon-calibrated hyperspectral photoluminescence and TRPL imaging how surface passivation and inhomogeneities at interfaces impact the photoluminescence quantum yields and minority carrier lifetimes. Laser illumination from the perovskite and glass/TiO2 sides allows us to disentangle changes in surface recombination velocity from the charge carrier extraction at the electron transport layer. We find that charge extraction is spatially modulated due to an inhomogeneous mesoporous (mp)-TiO2 film thickness. Our results show that the mp-TiO2 layer is not fully optimized since the electronic properties are spatially modified, leading to lateral changes in quasi-Fermi-level splitting, minority carrier lifetime and, consequently, a reduction in open-circuit voltage.

Year:

2024

Collaborators (9)

Fabio Matteocci

University of Rome Tor Vergata

ITALY

Sudhir K Sahoo

-

GERMANY

Susanne Siebentritt

-

LUXEMBOURG

Hossein Mirhosseini

-

GERMANY

Ajay Singh

-

LUXEMBOURG

Clement Maheu

Institut des Matériaux Jean Rouxel

FRANCE

Vladimir Dyakonov

Chair holder / Professor

Julius-Maximilians-Universitat Würzburg Fakultät für Physik und Astronomie

GERMANY

Jeremy Hieulle

Assistant Professor

University of Applied Sciences Upper Austria

FRANCE

Thomas Fauster

Professor (retired)

Friedrich-Alexander Universität Erlangen-Nürnberg

GERMANY
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