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Hauptverfasser: Yamada, Yasuhiro, Oki, Takeru, Morita, Takeshi, Yamada, Takumi, Fukuda, Mitsuki, Ichikawa, Shuhei, Kojima, Kazunobu, Kanemitsu, Yoshihiko
Format: Preprint
Veröffentlicht: 2024
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Online-Zugang:https://arxiv.org/abs/2406.10641
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author Yamada, Yasuhiro
Oki, Takeru
Morita, Takeshi
Yamada, Takumi
Fukuda, Mitsuki
Ichikawa, Shuhei
Kojima, Kazunobu
Kanemitsu, Yoshihiko
author_facet Yamada, Yasuhiro
Oki, Takeru
Morita, Takeshi
Yamada, Takumi
Fukuda, Mitsuki
Ichikawa, Shuhei
Kojima, Kazunobu
Kanemitsu, Yoshihiko
contents Highly efficient anti-Stokes (AS) photoluminescence (PL) is observed from halide perovskite quantum dots (QDs) due to their strong electron-phonon interactions. The AS PL is particularly intriguing as it suggests the potential for semiconductor optical cooling if the external quantum efficiency approaches 100%. However, the PL quantum efficiency in QDs is primarily dominated by multiparticle nonradiative Auger recombination processes under intense photoexcitation, which impose limits on the optical cooling gain. Here, we investigate the Auger recombination of dot-in-crystal perovskites. We quantitatively estimate the maximum optical cooling gain and the corresponding excitation intensity. We further conducted optical cooling experiments and demonstrate a maximum photo-cooling of approximately 9 K from room temperature. Additionally, we confirmed that increasing the excitation intensity leads to a transition from photo-cooling to photo-heating. These observations are consistent with our time-resolved measurements, offering insights into the potential and limitations of optical cooling in semiconductor QDs.
format Preprint
id arxiv_https___arxiv_org_abs_2406_10641
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optical Cooling of Dot-in-crystal Halide Perovskites: Challenges of Nonlinear Exciton Recombination
Yamada, Yasuhiro
Oki, Takeru
Morita, Takeshi
Yamada, Takumi
Fukuda, Mitsuki
Ichikawa, Shuhei
Kojima, Kazunobu
Kanemitsu, Yoshihiko
Materials Science
Highly efficient anti-Stokes (AS) photoluminescence (PL) is observed from halide perovskite quantum dots (QDs) due to their strong electron-phonon interactions. The AS PL is particularly intriguing as it suggests the potential for semiconductor optical cooling if the external quantum efficiency approaches 100%. However, the PL quantum efficiency in QDs is primarily dominated by multiparticle nonradiative Auger recombination processes under intense photoexcitation, which impose limits on the optical cooling gain. Here, we investigate the Auger recombination of dot-in-crystal perovskites. We quantitatively estimate the maximum optical cooling gain and the corresponding excitation intensity. We further conducted optical cooling experiments and demonstrate a maximum photo-cooling of approximately 9 K from room temperature. Additionally, we confirmed that increasing the excitation intensity leads to a transition from photo-cooling to photo-heating. These observations are consistent with our time-resolved measurements, offering insights into the potential and limitations of optical cooling in semiconductor QDs.
title Optical Cooling of Dot-in-crystal Halide Perovskites: Challenges of Nonlinear Exciton Recombination
topic Materials Science
url https://arxiv.org/abs/2406.10641