Band Structure and Exciton Dynamics in Quasi‐2D Dodecylammonium Halide Perovskites

Author:

Ammirati Giuseppe12ORCID,Martelli Faustino3ORCID,O'Keeffe Patrick4ORCID,Turchini Stefano1ORCID,Paladini Alessandra4ORCID,Palummo Maurizia5ORCID,Giorgi Giacomo678ORCID,Cinquino Marco910ORCID,De Giorgi Milena9ORCID,De Marco Luisa9ORCID,Catone Daniele1ORCID

Affiliation:

1. Istituto di Struttura della Materia – CNR (ISM‐CNR) EuroFEL Support Laboratory (EFSL) Via del Fosso del Cavaliere 100 Rome 00133 Italy

2. CHOSE (Centre for Hybrid and Organic Solar Energy) Department of Electronic Engineering University of Rome Tor Vergata Via del Politecnico 1 Rome 00133 Italy

3. Istituto per la Microelettronica e i Microsistemi (IMM) CNR Rome I‐00133 Italy

4. Istituto di Struttura della Materia – CNR (ISM‐CNR) EuroFEL Support Laboratory (EFSL) Monterotondo Scalo 00015 Italy

5. INFN Dept of Physics University of Rome Tor Vergata Via della Ricerca Scientifica 1 Roma 00133 Italy

6. Department of Civil & Environmental Engineering (DICA) University of Perugia Perugia I‐06123 Italy

7. CNR‐SCITEC Perugia I‐06123 Italy

8. CIRIAF – Interuniversity Research Centre University of Perugia Via G. Duranti 63 Perugia 06125 Italy

9. CNR NANOTEC Institute of Nanotechnology c/o campus Ecotekne University of Salento Via Monteroni Lecce 73100 Italy

10. Dipartimento di Matematica e Fisica E. De Giorgi Università Del Salento Campus Ecotekne, Via Monteroni Lecce 73100 Italy

Abstract

AbstractFemtosecond transient absorption spectroscopy (FTAS) is an important tool to investigate the physics of halide perovskites having different dimensionality, morphology, and architectures, giving insights into the electronic and excitonic optical transitions. Here, FTAS on monolayer (n = 1) and multilayer (n = 2, 3) quasi‐2D perovskites in the Ruddlesden–Popper phase: DA2MAn‐1PbnI3n+1 (DAMAPI) is presented, with the dodecylammonium (DA = CH3‐(CH2)11‐NH3+) as the spacer and methylammonium (MA = CH3NH3+) as the organic cation for samples with n > 1. The measurements, performed at 77 K and room temperature using several pump energies and excitation densities, allow the observation of different absorption bleaching energies. Those energies are compared with the results of first‐principles theoretical simulations based on density functional theory, the GW method, and the Bethe–Salpeter equation and assigned to transitions involving excitons with principal quantum numbers 1s and 2s. The temporal analysis of the absorption bleaching indicates the exciton–exciton annihilation as the main relaxation mechanism in the first picoseconds after excitation, while exciton radiative recombination is observed at longer time delays (>100 ps). Therefore, FTAS allows the study of the carrier dynamics and, given its high sensitivity to carrier density changes,  the observation of spectral features not observable with steady‐state measurements.

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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