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Resolution analysis of films with em...
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Farahi, Navid.
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Resolution analysis of films with embedded spheres for imaging of nanoplasmonic arrays.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Resolution analysis of films with embedded spheres for imaging of nanoplasmonic arrays./
作者:
Farahi, Navid.
面頁冊數:
76 p.
附註:
Source: Masters Abstracts International, Volume: 54-06.
Contained By:
Masters Abstracts International54-06(E).
標題:
Optics. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=1592989
ISBN:
9781321890266
Resolution analysis of films with embedded spheres for imaging of nanoplasmonic arrays.
Farahi, Navid.
Resolution analysis of films with embedded spheres for imaging of nanoplasmonic arrays.
- 76 p.
Source: Masters Abstracts International, Volume: 54-06.
Thesis (M.S.)--The University of North Carolina at Charlotte, 2015.
With the advent of microsphere assisted microscopy in 2011, this technique emerged as a simple and easy way to obtain optical super-resolution. Although the possible mechanisms of imaging by microspheres are debated in the literature, most of the experimental studies established the resolution values well beyond the diffraction limit. It should be noted, however, that there is no standard resolution measurement in this field that researchers can use. The reported resolution has been based on the smallest discernible feature; although it seems logical but it is not based on the standard textbook definition, and so far it has ended to a wide range of resolution reports based on qualitative criteria which can lead to exaggerated resolution values. In addition, this method has another limitation related to its limited field-of-view. In this work, first we fabricated a novel optical component for super-resolution imaging based on an attachable polydimethylsiloxane (PDMS) thin film with embedded high index (n~2) barium titanate glass (BTG) microspheres. It is shown that such films can be translated along the surface of investigated structures to enhance field-of-view. Second, we introduced a method of image treatment which allows determining the super-resolution values consistent with the resolution definition in the conventional diffraction-limited optics. We demonstrated this method for a typical microsphere-assisted image where we measured the super-resolution of ~lambda/5.5. We also developed this technique to measure the resolution of a micro-cylindrical-assisted system.
ISBN: 9781321890266Subjects--Topical Terms:
517925
Optics.
Resolution analysis of films with embedded spheres for imaging of nanoplasmonic arrays.
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With the advent of microsphere assisted microscopy in 2011, this technique emerged as a simple and easy way to obtain optical super-resolution. Although the possible mechanisms of imaging by microspheres are debated in the literature, most of the experimental studies established the resolution values well beyond the diffraction limit. It should be noted, however, that there is no standard resolution measurement in this field that researchers can use. The reported resolution has been based on the smallest discernible feature; although it seems logical but it is not based on the standard textbook definition, and so far it has ended to a wide range of resolution reports based on qualitative criteria which can lead to exaggerated resolution values. In addition, this method has another limitation related to its limited field-of-view. In this work, first we fabricated a novel optical component for super-resolution imaging based on an attachable polydimethylsiloxane (PDMS) thin film with embedded high index (n~2) barium titanate glass (BTG) microspheres. It is shown that such films can be translated along the surface of investigated structures to enhance field-of-view. Second, we introduced a method of image treatment which allows determining the super-resolution values consistent with the resolution definition in the conventional diffraction-limited optics. We demonstrated this method for a typical microsphere-assisted image where we measured the super-resolution of ~lambda/5.5. We also developed this technique to measure the resolution of a micro-cylindrical-assisted system.
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