語系:
繁體中文
English
說明(常見問題)
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Development of Novel Anodized Thin-Film Radiation Sensors.
紀錄類型:
書目-語言資料,手稿 : Monograph/item
正題名/作者:
Development of Novel Anodized Thin-Film Radiation Sensors./
作者:
Gagne, Matthew.
面頁冊數:
1 online resource (69 pages)
附註:
Source: Dissertations Abstracts International, Volume: 85-08, Section: B.
Contained By:
Dissertations Abstracts International85-08B.
標題:
Medical imaging. -
電子資源:
click for full text (PQDT)
ISBN:
9798381447163
Development of Novel Anodized Thin-Film Radiation Sensors.
Gagne, Matthew.
Development of Novel Anodized Thin-Film Radiation Sensors.
- 1 online resource (69 pages)
Source: Dissertations Abstracts International, Volume: 85-08, Section: B.
Thesis (Ph.D.)--University of Massachusetts Lowell, 2024.
Includes bibliographical references
Classical radiation detection technology relies on the interaction of radiation within the bulky volume of their sensors. Historically, increasing the sensitivity of a radiation detector required using costly materials, increasing the interaction volume, or including complex and fragile amplification technology. These limitations have meant that only incremental changes and improvements in radiation detection systems have been possible. As radiation use in industry, military applications, and medicine continue to increase, the need for a cost effective, light weight, and resilient radiation detectors is at an all-time high. High Energy Current (HEC) technology relies on surface level radiation interaction with thin and inexpensive materials to produce sensitive radiation sensors. Detection systems using macroscopic fabrication techniques to produce HEC technology have shown the potential for this technology in numerous applications.In order to capitalize on the great advantages of HEC technology over historically available radiation sensors, the technology needs to be miniaturized. This work details the development, fabrication, and testing of a novel thin-film flexible and resilient radiation detector based on HEC principals. Dubbed the Anodox sensor, these prototypes are produced using a novel anodization technique using affordable of the shelf materials. They are capable of reliable radiation detection using commercial electronic reading equipment and can operate in a self-powered or minimal voltage-bias mode. These physically resilient detectors are able to accomplish these goals while having a total thickness of approximately 50 μm. In this work, Anodox sensors are also tested for their response to electronically produced kVp x-rays. They are first characterized for their response to x-rays from an industrial x-ray tube. Following characterization, they are tested for their response in two modern medical imaging modalities. Fluoroscopy and computer tomography (CT) are two imaging modalities that play an increasingly important role in modern healthcare while also imparting significant radiation dose to patients and clinicians. These proof-of-concept tests show the viability of HEC sensors as an effective dose monitoring tool in modalities where accurate dose measurement is not currently possible. This research highlights the benefits of HEC technology in radiation detection and medicine and shows the need for the further development of this novel technology.Portions of this work were supported by USAF SBIR contract FA8051-17-C-0003.
Electronic reproduction.
Ann Arbor, Mich. :
ProQuest,
2024
Mode of access: World Wide Web
ISBN: 9798381447163Subjects--Topical Terms:
1180167
Medical imaging.
Subjects--Index Terms:
Anodization techniqueIndex Terms--Genre/Form:
554714
Electronic books.
Development of Novel Anodized Thin-Film Radiation Sensors.
LDR
:03945ntm a22003977 4500
001
1145507
005
20240624103712.5
006
m o d
007
cr bn ---uuuuu
008
250605s2024 xx obm 000 0 eng d
020
$a
9798381447163
035
$a
(MiAaPQ)AAI30695468
035
$a
AAI30695468
040
$a
MiAaPQ
$b
eng
$c
MiAaPQ
$d
NTU
100
1
$a
Gagne, Matthew.
$3
1437795
245
1 0
$a
Development of Novel Anodized Thin-Film Radiation Sensors.
264
0
$c
2024
300
$a
1 online resource (69 pages)
336
$a
text
$b
txt
$2
rdacontent
337
$a
computer
$b
c
$2
rdamedia
338
$a
online resource
$b
cr
$2
rdacarrier
500
$a
Source: Dissertations Abstracts International, Volume: 85-08, Section: B.
500
$a
Advisor: Sajo, Erno;Ngwa, Wilfred.
502
$a
Thesis (Ph.D.)--University of Massachusetts Lowell, 2024.
504
$a
Includes bibliographical references
520
$a
Classical radiation detection technology relies on the interaction of radiation within the bulky volume of their sensors. Historically, increasing the sensitivity of a radiation detector required using costly materials, increasing the interaction volume, or including complex and fragile amplification technology. These limitations have meant that only incremental changes and improvements in radiation detection systems have been possible. As radiation use in industry, military applications, and medicine continue to increase, the need for a cost effective, light weight, and resilient radiation detectors is at an all-time high. High Energy Current (HEC) technology relies on surface level radiation interaction with thin and inexpensive materials to produce sensitive radiation sensors. Detection systems using macroscopic fabrication techniques to produce HEC technology have shown the potential for this technology in numerous applications.In order to capitalize on the great advantages of HEC technology over historically available radiation sensors, the technology needs to be miniaturized. This work details the development, fabrication, and testing of a novel thin-film flexible and resilient radiation detector based on HEC principals. Dubbed the Anodox sensor, these prototypes are produced using a novel anodization technique using affordable of the shelf materials. They are capable of reliable radiation detection using commercial electronic reading equipment and can operate in a self-powered or minimal voltage-bias mode. These physically resilient detectors are able to accomplish these goals while having a total thickness of approximately 50 μm. In this work, Anodox sensors are also tested for their response to electronically produced kVp x-rays. They are first characterized for their response to x-rays from an industrial x-ray tube. Following characterization, they are tested for their response in two modern medical imaging modalities. Fluoroscopy and computer tomography (CT) are two imaging modalities that play an increasingly important role in modern healthcare while also imparting significant radiation dose to patients and clinicians. These proof-of-concept tests show the viability of HEC sensors as an effective dose monitoring tool in modalities where accurate dose measurement is not currently possible. This research highlights the benefits of HEC technology in radiation detection and medicine and shows the need for the further development of this novel technology.Portions of this work were supported by USAF SBIR contract FA8051-17-C-0003.
533
$a
Electronic reproduction.
$b
Ann Arbor, Mich. :
$c
ProQuest,
$d
2024
538
$a
Mode of access: World Wide Web
650
4
$a
Medical imaging.
$3
1180167
650
4
$a
Biomedical engineering.
$3
588770
650
4
$a
Nanotechnology.
$3
557660
653
$a
Anodization technique
653
$a
Dosimetry
653
$a
Nano-fabrication
653
$a
Radiation
653
$a
Thin-film
655
7
$a
Electronic books.
$2
local
$3
554714
690
$a
0574
690
$a
0541
690
$a
0652
710
2
$a
ProQuest Information and Learning Co.
$3
1178819
710
2
$a
University of Massachusetts Lowell.
$b
Biomedical Engineering.
$3
1335286
773
0
$t
Dissertations Abstracts International
$g
85-08B.
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=30695468
$z
click for full text (PQDT)
筆 0 讀者評論
多媒體
評論
新增評論
分享你的心得
Export
取書館別
處理中
...
變更密碼[密碼必須為2種組合(英文和數字)及長度為10碼以上]
登入
第一次登入時,112年前入學、到職者,密碼請使用身分證號登入;112年後入學、到職者,密碼請使用身分證號"後六碼"登入,請注意帳號密碼有區分大小寫!
帳號(學號)
密碼
請在此電腦上記得個人資料
取消
忘記密碼? (請注意!您必須已在系統登記E-mail信箱方能使用。)