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Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory

Nanomechanical resonators offer brilliant mass and force sensitivity applied in many fields, owing to a low mass m and high-quality factor Q. However, in vibrating process, resonant energy is inevitably dissipated. Typically, quality factor does not surpass the inverse of the material loss angle φ....

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Autores principales: Zheng, Xiande, Liu, Ying, Qiu, Jing, Liu, Guanjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415148/
https://www.ncbi.nlm.nih.gov/pubmed/36014672
http://dx.doi.org/10.3390/nano12162807
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author Zheng, Xiande
Liu, Ying
Qiu, Jing
Liu, Guanjun
author_facet Zheng, Xiande
Liu, Ying
Qiu, Jing
Liu, Guanjun
author_sort Zheng, Xiande
collection PubMed
description Nanomechanical resonators offer brilliant mass and force sensitivity applied in many fields, owing to a low mass m and high-quality factor Q. However, in vibrating process, resonant energy is inevitably dissipated. Typically, quality factor does not surpass the inverse of the material loss angle φ. Recently, some exceptions emerged in the use of highly stressed silicon nitride material. As yet, it is interpreted that the pre-stress seems to “dilute” the intrinsic energy dissipation according to the Zener model. Is there any other material that could further break the 1/φ limit and achieve higher quality factors? In our previous research, through theoretical calculation and finite element simulation, we have proved that graphene’s quality factor is two orders of magnitude larger than silicon nitride, on account of the extremely thin thickness of graphene. Based on this, we further optimize the structure of phononic crystals to achieve higher quality factors, in terms of duty cycle and cell size. Through simulation analysis, the quality factor could improve with a larger duty cycle and bigger cell size of triangular lattice phononic crystal. Unexpectedly, the Q amplification coefficient of the 3 × 5-cell structure, which is the least number to compose a phononic crystal with a central defect area, is the highest. In contrast, the minimal cell-number structure in hexagonal lattice could not achieve the brilliant dissipation dilution effect as well as the triangular one. Then we consider how overall size and stress influence quality factor and, furthermore, compare theoretical calculation and finite simulation. Lastly, we start from the primitive 3 × 5 cells, constantly adding cells to the periphery. Through simulation, to our surprise, the largest Q amplification coefficient does not belong to the largest structure, instead originating from the moderate one consisting of 7 × 13 cells.
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spelling pubmed-94151482022-08-27 Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory Zheng, Xiande Liu, Ying Qiu, Jing Liu, Guanjun Nanomaterials (Basel) Article Nanomechanical resonators offer brilliant mass and force sensitivity applied in many fields, owing to a low mass m and high-quality factor Q. However, in vibrating process, resonant energy is inevitably dissipated. Typically, quality factor does not surpass the inverse of the material loss angle φ. Recently, some exceptions emerged in the use of highly stressed silicon nitride material. As yet, it is interpreted that the pre-stress seems to “dilute” the intrinsic energy dissipation according to the Zener model. Is there any other material that could further break the 1/φ limit and achieve higher quality factors? In our previous research, through theoretical calculation and finite element simulation, we have proved that graphene’s quality factor is two orders of magnitude larger than silicon nitride, on account of the extremely thin thickness of graphene. Based on this, we further optimize the structure of phononic crystals to achieve higher quality factors, in terms of duty cycle and cell size. Through simulation analysis, the quality factor could improve with a larger duty cycle and bigger cell size of triangular lattice phononic crystal. Unexpectedly, the Q amplification coefficient of the 3 × 5-cell structure, which is the least number to compose a phononic crystal with a central defect area, is the highest. In contrast, the minimal cell-number structure in hexagonal lattice could not achieve the brilliant dissipation dilution effect as well as the triangular one. Then we consider how overall size and stress influence quality factor and, furthermore, compare theoretical calculation and finite simulation. Lastly, we start from the primitive 3 × 5 cells, constantly adding cells to the periphery. Through simulation, to our surprise, the largest Q amplification coefficient does not belong to the largest structure, instead originating from the moderate one consisting of 7 × 13 cells. MDPI 2022-08-16 /pmc/articles/PMC9415148/ /pubmed/36014672 http://dx.doi.org/10.3390/nano12162807 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zheng, Xiande
Liu, Ying
Qiu, Jing
Liu, Guanjun
Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title_full Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title_fullStr Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title_full_unstemmed Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title_short Structural Optimization of Graphene Triangular Lattice Phononic Crystal Based on Dissipation Dilution Theory
title_sort structural optimization of graphene triangular lattice phononic crystal based on dissipation dilution theory
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415148/
https://www.ncbi.nlm.nih.gov/pubmed/36014672
http://dx.doi.org/10.3390/nano12162807
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