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Design of Graphene Phononic Crystals for Heat Phonon Engineering

Controlling the heat transport and thermal conductivity through a material is of prime importance for thermoelectric applications. Phononic crystals, which are a nanostructured array of specially designed pores, can suppress heat transportation owing to the phonon wave interference, resulting in ban...

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Autores principales: Masrura, Haque Mayeesha, Kareekunnan, Afsal, Liu, Fayong, Ramaraj, Sankar Ganesh, Ellrott, Günter, Hammam, Ahmmed M. M., Muruganathan, Manoharan, Mizuta, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408078/
https://www.ncbi.nlm.nih.gov/pubmed/32630087
http://dx.doi.org/10.3390/mi11070655
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author Masrura, Haque Mayeesha
Kareekunnan, Afsal
Liu, Fayong
Ramaraj, Sankar Ganesh
Ellrott, Günter
Hammam, Ahmmed M. M.
Muruganathan, Manoharan
Mizuta, Hiroshi
author_facet Masrura, Haque Mayeesha
Kareekunnan, Afsal
Liu, Fayong
Ramaraj, Sankar Ganesh
Ellrott, Günter
Hammam, Ahmmed M. M.
Muruganathan, Manoharan
Mizuta, Hiroshi
author_sort Masrura, Haque Mayeesha
collection PubMed
description Controlling the heat transport and thermal conductivity through a material is of prime importance for thermoelectric applications. Phononic crystals, which are a nanostructured array of specially designed pores, can suppress heat transportation owing to the phonon wave interference, resulting in bandgap formation in their band structure. To control heat phonon propagation in thermoelectric devices, phononic crystals with a bandgap in the THz regime are desirable. In this study, we carried out simulation on snowflake shaped phononic crystal and obtained several phononic bandgaps in the THz regime, with the highest being at ≈2 THz. The phononic bandgap position and the width of the bandgap were found to be tunable by varying the neck-length of the snowflake structure. A unique bandgap map computed by varying the neck-length continuously provides enormous amounts of information as to the size and position of the phononic bandgap for various pore dimensions. We have also carried out transmission spectrum analysis and found good agreement with the band structure calculations. The pressure map visualized at various frequencies validates the effectiveness of snowflake shaped nano-pores in suppressing the phonons partially or completely, depending on the transmission probabilities.
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spelling pubmed-74080782020-08-25 Design of Graphene Phononic Crystals for Heat Phonon Engineering Masrura, Haque Mayeesha Kareekunnan, Afsal Liu, Fayong Ramaraj, Sankar Ganesh Ellrott, Günter Hammam, Ahmmed M. M. Muruganathan, Manoharan Mizuta, Hiroshi Micromachines (Basel) Article Controlling the heat transport and thermal conductivity through a material is of prime importance for thermoelectric applications. Phononic crystals, which are a nanostructured array of specially designed pores, can suppress heat transportation owing to the phonon wave interference, resulting in bandgap formation in their band structure. To control heat phonon propagation in thermoelectric devices, phononic crystals with a bandgap in the THz regime are desirable. In this study, we carried out simulation on snowflake shaped phononic crystal and obtained several phononic bandgaps in the THz regime, with the highest being at ≈2 THz. The phononic bandgap position and the width of the bandgap were found to be tunable by varying the neck-length of the snowflake structure. A unique bandgap map computed by varying the neck-length continuously provides enormous amounts of information as to the size and position of the phononic bandgap for various pore dimensions. We have also carried out transmission spectrum analysis and found good agreement with the band structure calculations. The pressure map visualized at various frequencies validates the effectiveness of snowflake shaped nano-pores in suppressing the phonons partially or completely, depending on the transmission probabilities. MDPI 2020-06-30 /pmc/articles/PMC7408078/ /pubmed/32630087 http://dx.doi.org/10.3390/mi11070655 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Masrura, Haque Mayeesha
Kareekunnan, Afsal
Liu, Fayong
Ramaraj, Sankar Ganesh
Ellrott, Günter
Hammam, Ahmmed M. M.
Muruganathan, Manoharan
Mizuta, Hiroshi
Design of Graphene Phononic Crystals for Heat Phonon Engineering
title Design of Graphene Phononic Crystals for Heat Phonon Engineering
title_full Design of Graphene Phononic Crystals for Heat Phonon Engineering
title_fullStr Design of Graphene Phononic Crystals for Heat Phonon Engineering
title_full_unstemmed Design of Graphene Phononic Crystals for Heat Phonon Engineering
title_short Design of Graphene Phononic Crystals for Heat Phonon Engineering
title_sort design of graphene phononic crystals for heat phonon engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408078/
https://www.ncbi.nlm.nih.gov/pubmed/32630087
http://dx.doi.org/10.3390/mi11070655
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