語系:
繁體中文
English
說明(常見問題)
回圖書館首頁
手機版館藏查詢
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Reconstruction and Control of Tip Po...
~
Liu, Zhen.
FindBook
Google Book
Amazon
博客來
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy./
作者:
Liu, Zhen.
出版者:
Ann Arbor : ProQuest Dissertations & Theses, : 2017,
面頁冊數:
193 p.
附註:
Source: Dissertation Abstracts International, Volume: 78-10(E), Section: B.
Contained By:
Dissertation Abstracts International78-10B(E).
標題:
Mechanical engineering. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=10610202
ISBN:
9781369839357
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy.
Liu, Zhen.
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy.
- Ann Arbor : ProQuest Dissertations & Theses, 2017 - 193 p.
Source: Dissertation Abstracts International, Volume: 78-10(E), Section: B.
Thesis (Ph.D.)--The Ohio State University, 2017.
In the last three decades, atomic force microscopy (AFM) has evolved to be one of the most powerful and versatile tools enabling nanoscale analysis and exploration in many areas such as material science, physics, chemistry, tribology and nanomanufacturing. Especially, there has been intensively increasing interest in applying AFM in biological researches due to its unmatched capability of studying biological samples like protein, DNA molecule and live cell in their native physiological environment with high resolution. Dynamic AFM is a widely used AFM mode because it greatly reduces the lateral force between tip and sample through intermittent tip-sample contact during scanning and it is insensitive to thermal drift of cantilever.
ISBN: 9781369839357Subjects--Topical Terms:
649730
Mechanical engineering.
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy.
LDR
:06360nmm a2200349 4500
001
2154369
005
20180330125241.5
008
190424s2017 ||||||||||||||||| ||eng d
020
$a
9781369839357
035
$a
(MiAaPQ)AAI10610202
035
$a
(MiAaPQ)OhioLINK:osu1483629656167247
035
$a
AAI10610202
040
$a
MiAaPQ
$c
MiAaPQ
100
1
$a
Liu, Zhen.
$3
900571
245
1 0
$a
Reconstruction and Control of Tip Position and Dynamic Sensing of Interaction Force for Micro-Cantilever to Enable High Speed and High Resolution Dynamic Atomic Force Microscopy.
260
1
$a
Ann Arbor :
$b
ProQuest Dissertations & Theses,
$c
2017
300
$a
193 p.
500
$a
Source: Dissertation Abstracts International, Volume: 78-10(E), Section: B.
500
$a
Adviser: Chia-Hsiang Menq.
502
$a
Thesis (Ph.D.)--The Ohio State University, 2017.
520
$a
In the last three decades, atomic force microscopy (AFM) has evolved to be one of the most powerful and versatile tools enabling nanoscale analysis and exploration in many areas such as material science, physics, chemistry, tribology and nanomanufacturing. Especially, there has been intensively increasing interest in applying AFM in biological researches due to its unmatched capability of studying biological samples like protein, DNA molecule and live cell in their native physiological environment with high resolution. Dynamic AFM is a widely used AFM mode because it greatly reduces the lateral force between tip and sample through intermittent tip-sample contact during scanning and it is insensitive to thermal drift of cantilever.
520
$a
In this dissertation, the fundamental aspects in modeling, actuation, sensing and control of AFM are investigated. Accurate multi-mode tip position reconstruction, high speed and high precision active tip motion control, precise sensing and direct control of dynamic interaction force are realized to overcome the limitations in conventional dynamic AFM and to enable the potential of high speed and high resolution dynamic AFM imaging.
520
$a
As scanning speed increases, cantilever's responses of high dynamic modes can be excited noticeably by tip-sample interaction force. These responses are distorted in the optical lever measurement system due to measurement sensitivity difference among distinct dynamic modes, which leads to tip position measurement error and therefore compromises image resolution. In this research work, cantilever dynamics of multiple dynamic modes is modeled and multi-mode measurement sensitivity calibration is realized. Based on the multi-mode cantilever model and the calibrated measurement sensitivities, two approaches, i.e., the modal projection filtering method and the multi-mode state estimation method, are developed to reconstruct actual tip position from the distorted optical lever measurement signal with sub-Angstrom level accuracy to help retain image resolution during high speed scanning.
520
$a
AFM system relies on adjustment of cantilever's z position/tip position to track sample topography. Therefore, speed and accuracy of tip position control are of paramount importance to the scanning speed and image resolution. In conventional dynamic AFM, tip positioning speed is severely limited by the low-bandwidth piezo actuator used as z-positioner and tip positioning accuracy is compromised by the thermal fluctuation of cantilever. In this research work, a novel active tip motion control system is developed to realize high speed and high precision tip positioning. In this system, a collocated electromagnetic actuation mechanism, used as a high-bandwidth z-positioner, and a model-based controller, designed according to the multi-mode cantilever model, are employed to extend the bandwidth of tip motion control over cantilever's fundamental dynamic mode to enable rapid tip stepping in each tapping cycle. Cantilever's thermal fluctuation is also actively suppressed through high-bandwidth feedback control so that tip positioning accuracy of sub-Angstrom level can be achieved even in liquid.
520
$a
Amplitude modulation is commonly used for tip-sample interaction regulation in conventional dynamic AFM, whereas its regulation bandwidth is limited by the transient response of cantilever as well as the oscillation amplitude measurement delay. In this research work, dynamic sensing and direct regulation of the tip-sample interaction force are realized, which avoid the bandwidth limitation of conventional amplitude modulation method and enable the potential of high speed dynamic AFM imaging. By introducing the physical interaction process between tip and sample into a Kalman-filter-based state estimator and by estimating and compensating cantilever dynamic parameter variation, dynamic interaction force is precisely estimated with estimation resolution reaching the physical thermal force limit. Peak of the estimated interaction force in each tapping cycle is thus detected and directly regulated with a feedback controller through adjustment of tip-sample distance with the high speed and high precision active tip motion control system.
520
$a
The enabling technologies developed in this research work are integrated to deliver a one-of-a-kind AFM probing system. A high-performance digital controller based on field programmable gate array (FPGA) is built, wherein various sensing, estimation and control algorithms are implemented for real-time computation and control with 1 MHz update rate. A standard calibration grid composed of circular hole array with 20 nm depth and 5 um pitch is imaged to prove the scanning speed advantage of developed AFM probing system over conventional dynamic AFM. Its scan rate is shown to be only limited by cantilever bandwidth. The image resolution is illustrated by simulated scanning of a sample of repeated spherical structure with 0.5 nm height and 6.2 nm pitch. Topography imaging and mechanical property mapping of live MCF7 human breast cancer cell in its native physiological environment are realized to demonstrate this system's potential of biological applications. (Abstract shortened by ProQuest.).
590
$a
School code: 0168.
650
4
$a
Mechanical engineering.
$3
649730
690
$a
0548
710
2
$a
The Ohio State University.
$b
Mechanical Engineering.
$3
1684523
773
0
$t
Dissertation Abstracts International
$g
78-10B(E).
790
$a
0168
791
$a
Ph.D.
792
$a
2017
793
$a
English
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=10610202
筆 0 讀者評論
館藏地:
全部
電子資源
出版年:
卷號:
館藏
1 筆 • 頁數 1 •
1
條碼號
典藏地名稱
館藏流通類別
資料類型
索書號
使用類型
借閱狀態
預約狀態
備註欄
附件
W9353916
電子資源
11.線上閱覽_V
電子書
EB
一般使用(Normal)
在架
0
1 筆 • 頁數 1 •
1
多媒體
評論
新增評論
分享你的心得
Export
取書館
處理中
...
變更密碼
登入