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Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons

[Image: see text] Many promising optoelectronic devices, such as broadband photodetectors, nonlinear frequency converters, and building blocks for data communication systems, exploit photoexcited charge carriers in graphene. For these systems, it is essential to understand the relaxation dynamics af...

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Autores principales: Pogna, Eva A. A., Jia, Xiaoyu, Principi, Alessandro, Block, Alexander, Banszerus, Luca, Zhang, Jincan, Liu, Xiaoting, Sohier, Thibault, Forti, Stiven, Soundarapandian, Karuppasamy, Terrés, Bernat, Mehew, Jake D., Trovatello, Chiara, Coletti, Camilla, Koppens, Frank H. L., Bonn, Mischa, Wang, Hai I., van Hulst, Niek, Verstraete, Matthieu J., Peng, Hailin, Liu, Zhongfan, Stampfer, Christoph, Cerullo, Giulio, Tielrooij, Klaas-Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8320233/
https://www.ncbi.nlm.nih.gov/pubmed/34139125
http://dx.doi.org/10.1021/acsnano.0c10864
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author Pogna, Eva A. A.
Jia, Xiaoyu
Principi, Alessandro
Block, Alexander
Banszerus, Luca
Zhang, Jincan
Liu, Xiaoting
Sohier, Thibault
Forti, Stiven
Soundarapandian, Karuppasamy
Terrés, Bernat
Mehew, Jake D.
Trovatello, Chiara
Coletti, Camilla
Koppens, Frank H. L.
Bonn, Mischa
Wang, Hai I.
van Hulst, Niek
Verstraete, Matthieu J.
Peng, Hailin
Liu, Zhongfan
Stampfer, Christoph
Cerullo, Giulio
Tielrooij, Klaas-Jan
author_facet Pogna, Eva A. A.
Jia, Xiaoyu
Principi, Alessandro
Block, Alexander
Banszerus, Luca
Zhang, Jincan
Liu, Xiaoting
Sohier, Thibault
Forti, Stiven
Soundarapandian, Karuppasamy
Terrés, Bernat
Mehew, Jake D.
Trovatello, Chiara
Coletti, Camilla
Koppens, Frank H. L.
Bonn, Mischa
Wang, Hai I.
van Hulst, Niek
Verstraete, Matthieu J.
Peng, Hailin
Liu, Zhongfan
Stampfer, Christoph
Cerullo, Giulio
Tielrooij, Klaas-Jan
author_sort Pogna, Eva A. A.
collection PubMed
description [Image: see text] Many promising optoelectronic devices, such as broadband photodetectors, nonlinear frequency converters, and building blocks for data communication systems, exploit photoexcited charge carriers in graphene. For these systems, it is essential to understand the relaxation dynamics after photoexcitation. These dynamics contain a sub-100 fs thermalization phase, which occurs through carrier–carrier scattering and leads to a carrier distribution with an elevated temperature. This is followed by a picosecond cooling phase, where different phonon systems play a role: graphene acoustic and optical phonons, and substrate phonons. Here, we address the cooling pathway of two technologically relevant systems, both consisting of high-quality graphene with a mobility >10 000 cm(2) V(–1) s(–1) and environments that do not efficiently take up electronic heat from graphene: WSe(2)-encapsulated graphene and suspended graphene. We study the cooling dynamics using ultrafast pump–probe spectroscopy at room temperature. Cooling via disorder-assisted acoustic phonon scattering and out-of-plane heat transfer to substrate phonons is relatively inefficient in these systems, suggesting a cooling time of tens of picoseconds. However, we observe much faster cooling, on a time scale of a few picoseconds. We attribute this to an intrinsic cooling mechanism, where carriers in the high-energy tail of the hot-carrier distribution emit optical phonons. This creates a permanent heat sink, as carriers efficiently rethermalize. We develop a macroscopic model that explains the observed dynamics, where cooling is eventually limited by optical-to-acoustic phonon coupling. These fundamental insights will guide the development of graphene-based optoelectronic devices.
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spelling pubmed-83202332021-07-29 Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons Pogna, Eva A. A. Jia, Xiaoyu Principi, Alessandro Block, Alexander Banszerus, Luca Zhang, Jincan Liu, Xiaoting Sohier, Thibault Forti, Stiven Soundarapandian, Karuppasamy Terrés, Bernat Mehew, Jake D. Trovatello, Chiara Coletti, Camilla Koppens, Frank H. L. Bonn, Mischa Wang, Hai I. van Hulst, Niek Verstraete, Matthieu J. Peng, Hailin Liu, Zhongfan Stampfer, Christoph Cerullo, Giulio Tielrooij, Klaas-Jan ACS Nano [Image: see text] Many promising optoelectronic devices, such as broadband photodetectors, nonlinear frequency converters, and building blocks for data communication systems, exploit photoexcited charge carriers in graphene. For these systems, it is essential to understand the relaxation dynamics after photoexcitation. These dynamics contain a sub-100 fs thermalization phase, which occurs through carrier–carrier scattering and leads to a carrier distribution with an elevated temperature. This is followed by a picosecond cooling phase, where different phonon systems play a role: graphene acoustic and optical phonons, and substrate phonons. Here, we address the cooling pathway of two technologically relevant systems, both consisting of high-quality graphene with a mobility >10 000 cm(2) V(–1) s(–1) and environments that do not efficiently take up electronic heat from graphene: WSe(2)-encapsulated graphene and suspended graphene. We study the cooling dynamics using ultrafast pump–probe spectroscopy at room temperature. Cooling via disorder-assisted acoustic phonon scattering and out-of-plane heat transfer to substrate phonons is relatively inefficient in these systems, suggesting a cooling time of tens of picoseconds. However, we observe much faster cooling, on a time scale of a few picoseconds. We attribute this to an intrinsic cooling mechanism, where carriers in the high-energy tail of the hot-carrier distribution emit optical phonons. This creates a permanent heat sink, as carriers efficiently rethermalize. We develop a macroscopic model that explains the observed dynamics, where cooling is eventually limited by optical-to-acoustic phonon coupling. These fundamental insights will guide the development of graphene-based optoelectronic devices. American Chemical Society 2021-06-17 2021-07-27 /pmc/articles/PMC8320233/ /pubmed/34139125 http://dx.doi.org/10.1021/acsnano.0c10864 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Pogna, Eva A. A.
Jia, Xiaoyu
Principi, Alessandro
Block, Alexander
Banszerus, Luca
Zhang, Jincan
Liu, Xiaoting
Sohier, Thibault
Forti, Stiven
Soundarapandian, Karuppasamy
Terrés, Bernat
Mehew, Jake D.
Trovatello, Chiara
Coletti, Camilla
Koppens, Frank H. L.
Bonn, Mischa
Wang, Hai I.
van Hulst, Niek
Verstraete, Matthieu J.
Peng, Hailin
Liu, Zhongfan
Stampfer, Christoph
Cerullo, Giulio
Tielrooij, Klaas-Jan
Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title_full Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title_fullStr Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title_full_unstemmed Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title_short Hot-Carrier Cooling in High-Quality Graphene Is Intrinsically Limited by Optical Phonons
title_sort hot-carrier cooling in high-quality graphene is intrinsically limited by optical phonons
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8320233/
https://www.ncbi.nlm.nih.gov/pubmed/34139125
http://dx.doi.org/10.1021/acsnano.0c10864
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