Back to Search Start Over

Overcoming Intrinsic Quantum Confinement and Ultrafast Self-Trapping in Ag-Bi-I- and Cu-Bi-I-Based 2D Double Perovskites through Electroactive Cations.

Authors :
Hooijer R
Wang S
Biewald A
Eckel C
Righetto M
Chen M
Xu Z
Blätte D
Han D
Ebert H
Herz LM
Weitz RT
Hartschuh A
Bein T
Source :
Journal of the American Chemical Society [J Am Chem Soc] 2024 Oct 02; Vol. 146 (39), pp. 26694-26706. Date of Electronic Publication: 2024 Sep 23.
Publication Year :
2024

Abstract

The possibility to combine organic semiconducting materials with inorganic halide perovskites opens exciting pathways toward tuning optoelectronic properties. Exploring stable and nontoxic, double perovskites as a host for electroactive organic cations to form two-dimensional (2D) hybrid materials is an emerging opportunity to create both functional and lead-free materials for optoelectronic applications. By introducing naphthalene and pyrene moieties into Ag-Bi-I and Cu-Bi-I double perovskite lattices, intrinsic electronic challenges of double perovskites are addressed and the electronic anisotropy of 2D perovskites can be modulated. (POE) <subscript>4</subscript> AgBiI <subscript>8</subscript> containing pyrene moieties in the 2D layers was selected from a total of eight new 2D double perovskites, exhibiting a favorable electronic band structure with a type IIb multiple quantum well system based on a layer architecture suitable for out-of-plane conductivity and leading to a photocurrent response ratio of almost 3 orders of magnitude under AM1.5G illumination. Finally, an exclusively parallelly oriented thin film of (POE) <subscript>4</subscript> AgBiI <subscript>8</subscript> was integrated into a device to construct the first pure n = 1 Ruddlesden-Popper 2D double perovskite solar cell.

Details

Language :
English
ISSN :
1520-5126
Volume :
146
Issue :
39
Database :
MEDLINE
Journal :
Journal of the American Chemical Society
Publication Type :
Academic Journal
Accession number :
39311491
Full Text :
https://doi.org/10.1021/jacs.4c04616