Unconventional Temperature Dependence of Exciton Diamagnetism in 2D Ruddlesden-Popper Lead Halide Perovskites

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Smith, William A., Katsutani, Fumiya, Hou, Jin, Zhang, Hao, Blancon, Jean-Christophe, Nojiri, Hiroyuki, Mohite, Aditya D., Baydin, Andrey, Kono, Junichiro, Zhu, Hanyu
Format: Preprint
Publié: 2025
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866909627304640512
author Smith, William A.
Katsutani, Fumiya
Hou, Jin
Zhang, Hao
Blancon, Jean-Christophe
Nojiri, Hiroyuki
Mohite, Aditya D.
Baydin, Andrey
Kono, Junichiro
Zhu, Hanyu
author_facet Smith, William A.
Katsutani, Fumiya
Hou, Jin
Zhang, Hao
Blancon, Jean-Christophe
Nojiri, Hiroyuki
Mohite, Aditya D.
Baydin, Andrey
Kono, Junichiro
Zhu, Hanyu
contents Layered hybrid perovskites containing larger organic cations have demonstrated superior environmental stability, but the presence of these insulating spacers also strengthens the exciton binding energy, which contributes to reduced carrier separation. The consequences of increased binding energy on device efficiency are still not fully documented, and binding energy measurements are often conducted at cryogenic temperatures where linewidths are decreased and a series of hydrogen-like bound states can be identified, but not under ambient conditions where devices are expected to operate. In contrast to the quenching observed in 3D perovskites such as methylammonium lead iodide, where exciton binding energies are thought to decrease at higher temperatures, we present evidence for a smaller excitonic radius at higher temperatures in the $n=5$ member of butylammonium-spaced methylammonium lead iodide, (BA)$_2$(MA)$_{n-1}$Pb$_n$I$_{3n+1}$. We measured the temperature-dependent diamagnetic shift coefficient in magnetic fields up to 40\,T, which is one-third as large at room temperature as those at cryogenic temperatures. In both the ideal 2D and 3D hydrogen models, this trend would indicate that the exciton binding energy more than triples at room temperature.
format Preprint
id arxiv_https___arxiv_org_abs_2505_23571
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unconventional Temperature Dependence of Exciton Diamagnetism in 2D Ruddlesden-Popper Lead Halide Perovskites
Smith, William A.
Katsutani, Fumiya
Hou, Jin
Zhang, Hao
Blancon, Jean-Christophe
Nojiri, Hiroyuki
Mohite, Aditya D.
Baydin, Andrey
Kono, Junichiro
Zhu, Hanyu
Materials Science
Mesoscale and Nanoscale Physics
Layered hybrid perovskites containing larger organic cations have demonstrated superior environmental stability, but the presence of these insulating spacers also strengthens the exciton binding energy, which contributes to reduced carrier separation. The consequences of increased binding energy on device efficiency are still not fully documented, and binding energy measurements are often conducted at cryogenic temperatures where linewidths are decreased and a series of hydrogen-like bound states can be identified, but not under ambient conditions where devices are expected to operate. In contrast to the quenching observed in 3D perovskites such as methylammonium lead iodide, where exciton binding energies are thought to decrease at higher temperatures, we present evidence for a smaller excitonic radius at higher temperatures in the $n=5$ member of butylammonium-spaced methylammonium lead iodide, (BA)$_2$(MA)$_{n-1}$Pb$_n$I$_{3n+1}$. We measured the temperature-dependent diamagnetic shift coefficient in magnetic fields up to 40\,T, which is one-third as large at room temperature as those at cryogenic temperatures. In both the ideal 2D and 3D hydrogen models, this trend would indicate that the exciton binding energy more than triples at room temperature.
title Unconventional Temperature Dependence of Exciton Diamagnetism in 2D Ruddlesden-Popper Lead Halide Perovskites
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2505.23571