Silicon-based Plasmonic Wavelength Division Multiplexing Devices
碩士 === 國立高雄科技大學 === 電子工程系 === 107 === In this thesis, the property of silicon-based plasmonic component is discussed. We use a variety of cavities to design the wavelength division multiplexing devices. First, we use triangle cavity to design the silicon-based plasmonic wavelength division multiplex...
Main Authors: | , |
---|---|
Other Authors: | |
Format: | Others |
Language: | en_US |
Published: |
2019
|
Online Access: | http://ndltd.ncl.edu.tw/handle/hffb6u |
id |
ndltd-TW-107NKUS0427085 |
---|---|
record_format |
oai_dc |
spelling |
ndltd-TW-107NKUS04270852019-08-22T04:01:08Z http://ndltd.ncl.edu.tw/handle/hffb6u Silicon-based Plasmonic Wavelength Division Multiplexing Devices 矽基表面電漿分波多工元件 KU, YAN-JAY 谷延捷 碩士 國立高雄科技大學 電子工程系 107 In this thesis, the property of silicon-based plasmonic component is discussed. We use a variety of cavities to design the wavelength division multiplexing devices. First, we use triangle cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the height of the triangular cavity, we can explore the characteristics of the structure, generate the sensitivity of the tip and filter out some wavelength of futility. Then the wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands. Second, we use a rectangle cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the height of the rectangle cavity, we can explore the characteristics of the structure, generate the phenomenon of the Bragg grating and filter out some wavelength of futility. The wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands. In the end, we use a ring cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the radius of the ring cavity, we can explore the characteristics of the structure, generate the phenomenon of the electromagnetically induced transparency (EIT) and filter out some wavelength of futility. The wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands. WU, YAW-DONG 吳曜東 2019 學位論文 ; thesis 133 en_US |
collection |
NDLTD |
language |
en_US |
format |
Others
|
sources |
NDLTD |
description |
碩士 === 國立高雄科技大學 === 電子工程系 === 107 === In this thesis, the property of silicon-based plasmonic component is discussed. We use a variety of cavities to design the wavelength division multiplexing devices.
First, we use triangle cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the height of the triangular cavity, we can explore the characteristics of the structure, generate the sensitivity of the tip and filter out some wavelength of futility. Then the wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands.
Second, we use a rectangle cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the height of the rectangle cavity, we can explore the characteristics of the structure, generate the phenomenon of the Bragg grating and filter out some wavelength of futility. The wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands.
In the end, we use a ring cavity to design the silicon-based plasmonic wavelength division multiplexing devices. By properly adjusting the radius of the ring cavity, we can explore the characteristics of the structure, generate the phenomenon of the electromagnetically induced transparency (EIT) and filter out some wavelength of futility. The wavelength is utilized in the optical communication band and the efficiency is about 55%, 55% respectively. For example, 1290nm or 1310nm optical communication band. Finally, designing the wavelength division multiplexing devices, which contain these two communication bands.
|
author2 |
WU, YAW-DONG |
author_facet |
WU, YAW-DONG KU, YAN-JAY 谷延捷 |
author |
KU, YAN-JAY 谷延捷 |
spellingShingle |
KU, YAN-JAY 谷延捷 Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
author_sort |
KU, YAN-JAY |
title |
Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
title_short |
Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
title_full |
Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
title_fullStr |
Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
title_full_unstemmed |
Silicon-based Plasmonic Wavelength Division Multiplexing Devices |
title_sort |
silicon-based plasmonic wavelength division multiplexing devices |
publishDate |
2019 |
url |
http://ndltd.ncl.edu.tw/handle/hffb6u |
work_keys_str_mv |
AT kuyanjay siliconbasedplasmonicwavelengthdivisionmultiplexingdevices AT gǔyánjié siliconbasedplasmonicwavelengthdivisionmultiplexingdevices AT kuyanjay xìjībiǎomiàndiànjiāngfēnbōduōgōngyuánjiàn AT gǔyánjié xìjībiǎomiàndiànjiāngfēnbōduōgōngyuánjiàn |
_version_ |
1719236463217868800 |