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Excitation and detection of acoustic phonons in nanoscale systems

Phonons play a key role in the physical properties of materials, and have long been a topic of study in physics. While the effects of phonons had historically been considered to be a hindrance, modern research has shown that phonons can be exploited due to their ability to couple to other excitation...

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Autores principales: Ng, Ryan C., El Sachat, Alexandros, Cespedes, Francisco, Poblet, Martin, Madiot, Guilhem, Jaramillo-Fernandez, Juliana, Florez, Omar, Xiao, Peng, Sledzinska, Marianna, Sotomayor-Torres, Clivia M., Chavez-Angel, Emigdio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520674/
https://www.ncbi.nlm.nih.gov/pubmed/36082529
http://dx.doi.org/10.1039/d2nr04100f
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author Ng, Ryan C.
El Sachat, Alexandros
Cespedes, Francisco
Poblet, Martin
Madiot, Guilhem
Jaramillo-Fernandez, Juliana
Florez, Omar
Xiao, Peng
Sledzinska, Marianna
Sotomayor-Torres, Clivia M.
Chavez-Angel, Emigdio
author_facet Ng, Ryan C.
El Sachat, Alexandros
Cespedes, Francisco
Poblet, Martin
Madiot, Guilhem
Jaramillo-Fernandez, Juliana
Florez, Omar
Xiao, Peng
Sledzinska, Marianna
Sotomayor-Torres, Clivia M.
Chavez-Angel, Emigdio
author_sort Ng, Ryan C.
collection PubMed
description Phonons play a key role in the physical properties of materials, and have long been a topic of study in physics. While the effects of phonons had historically been considered to be a hindrance, modern research has shown that phonons can be exploited due to their ability to couple to other excitations and consequently affect the thermal, dielectric, and electronic properties of solid state systems, greatly motivating the engineering of phononic structures. Advances in nanofabrication have allowed for structuring and phonon confinement even down to the nanoscale, drastically changing material properties. Despite developments in fabricating such nanoscale devices, the proper manipulation and characterization of phonons continues to be challenging. However, a fundamental understanding of these processes could enable the realization of key applications in diverse fields such as topological phononics, information technologies, sensing, and quantum electrodynamics, especially when integrated with existing electronic and photonic devices. Here, we highlight seven of the available methods for the excitation and detection of acoustic phonons and vibrations in solid materials, as well as advantages, disadvantages, and additional considerations related to their application. We then provide perspectives towards open challenges in nanophononics and how the additional understanding granted by these techniques could serve to enable the next generation of phononic technological applications.
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spelling pubmed-95206742022-10-31 Excitation and detection of acoustic phonons in nanoscale systems Ng, Ryan C. El Sachat, Alexandros Cespedes, Francisco Poblet, Martin Madiot, Guilhem Jaramillo-Fernandez, Juliana Florez, Omar Xiao, Peng Sledzinska, Marianna Sotomayor-Torres, Clivia M. Chavez-Angel, Emigdio Nanoscale Chemistry Phonons play a key role in the physical properties of materials, and have long been a topic of study in physics. While the effects of phonons had historically been considered to be a hindrance, modern research has shown that phonons can be exploited due to their ability to couple to other excitations and consequently affect the thermal, dielectric, and electronic properties of solid state systems, greatly motivating the engineering of phononic structures. Advances in nanofabrication have allowed for structuring and phonon confinement even down to the nanoscale, drastically changing material properties. Despite developments in fabricating such nanoscale devices, the proper manipulation and characterization of phonons continues to be challenging. However, a fundamental understanding of these processes could enable the realization of key applications in diverse fields such as topological phononics, information technologies, sensing, and quantum electrodynamics, especially when integrated with existing electronic and photonic devices. Here, we highlight seven of the available methods for the excitation and detection of acoustic phonons and vibrations in solid materials, as well as advantages, disadvantages, and additional considerations related to their application. We then provide perspectives towards open challenges in nanophononics and how the additional understanding granted by these techniques could serve to enable the next generation of phononic technological applications. The Royal Society of Chemistry 2022-09-09 /pmc/articles/PMC9520674/ /pubmed/36082529 http://dx.doi.org/10.1039/d2nr04100f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ng, Ryan C.
El Sachat, Alexandros
Cespedes, Francisco
Poblet, Martin
Madiot, Guilhem
Jaramillo-Fernandez, Juliana
Florez, Omar
Xiao, Peng
Sledzinska, Marianna
Sotomayor-Torres, Clivia M.
Chavez-Angel, Emigdio
Excitation and detection of acoustic phonons in nanoscale systems
title Excitation and detection of acoustic phonons in nanoscale systems
title_full Excitation and detection of acoustic phonons in nanoscale systems
title_fullStr Excitation and detection of acoustic phonons in nanoscale systems
title_full_unstemmed Excitation and detection of acoustic phonons in nanoscale systems
title_short Excitation and detection of acoustic phonons in nanoscale systems
title_sort excitation and detection of acoustic phonons in nanoscale systems
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520674/
https://www.ncbi.nlm.nih.gov/pubmed/36082529
http://dx.doi.org/10.1039/d2nr04100f
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