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Efficient Numerical Algorithms for V...
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ProQuest Information and Learning Co.
Efficient Numerical Algorithms for Virtual Design in Nanoplasmonics.
Record Type:
Language materials, manuscript : Monograph/item
Title/Author:
Efficient Numerical Algorithms for Virtual Design in Nanoplasmonics./
Author:
Ortan, Alexandra.
Description:
1 online resource (107 pages)
Notes:
Source: Dissertation Abstracts International, Volume: 78-12(E), Section: B.
Contained By:
Dissertation Abstracts International78-12B(E).
Subject:
Mathematics. -
Online resource:
click for full text (PQDT)
ISBN:
9780355081343
Efficient Numerical Algorithms for Virtual Design in Nanoplasmonics.
Ortan, Alexandra.
Efficient Numerical Algorithms for Virtual Design in Nanoplasmonics.
- 1 online resource (107 pages)
Source: Dissertation Abstracts International, Volume: 78-12(E), Section: B.
Thesis (Ph.D.)
Includes bibliographical references
Nanomaterials have given rise to many devices, from high-density data storage to optical bio-sensors capable of detecting specific biochemicals. The design of new nanodevices relies increasingly on numerical simulations, driving a need for efficient numerical methods. In this work, integral equations are used to efficiently solve the electromagnetic transmission problem at the interface of a dielectric and a periodic metal nanostructure. Derivative-free trust-region methods are then used to optimize the geometry of the nanostructure.
Electronic reproduction.
Ann Arbor, Mich. :
ProQuest,
2018
Mode of access: World Wide Web
ISBN: 9780355081343Subjects--Topical Terms:
527692
Mathematics.
Index Terms--Genre/Form:
554714
Electronic books.
Efficient Numerical Algorithms for Virtual Design in Nanoplasmonics.
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Nanomaterials have given rise to many devices, from high-density data storage to optical bio-sensors capable of detecting specific biochemicals. The design of new nanodevices relies increasingly on numerical simulations, driving a need for efficient numerical methods. In this work, integral equations are used to efficiently solve the electromagnetic transmission problem at the interface of a dielectric and a periodic metal nanostructure. Derivative-free trust-region methods are then used to optimize the geometry of the nanostructure.
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click for full text (PQDT)
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