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  1. NTU Theses and Dissertations Repository
  2. 理學院
  3. 物理學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/39415
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dc.contributor.advisor李遠哲(Yuan-Tseh Lee)
dc.contributor.authorWen-Ping Pengen
dc.contributor.author彭文平zh_TW
dc.date.accessioned2021-06-13T17:27:58Z-
dc.date.available2004-11-23
dc.date.copyright2004-11-23
dc.date.issued2004
dc.date.submitted2004-11-15
dc.identifier.citation1.Y. Cai, W. P. Peng, S. J. Kuo, and H. C. Chang, 'Single-particle mass spectrometry of polystyrene microspheres and diamond nanocrystals,' Analytical Chemistry, 74, 232-238, 2002.
2.Y. Cai, W. P. Peng, S. J. Kuo, and H. C. Chang, 'Calibration of an audio-frequency ion trap mass spectrometer,' International Journal of Mass Spectrometry, 214, 63-73, 2002.
3.Y. Cai, W. P. Peng, S. J. Kuo, C. C. Huan, S. Sabu, and H. C. Chang, 'Optical detection and charge-state analysis of MALDI-generated particles with molecular masses larger than 5MDa', Analytical Chemistry, 74, 4434-4440, 2002.
4.Y. Cai, W. P. Peng, H. C. Chang, 'Ion trap mass spectrometry of fluorescently labeled nanoparticles', Analytical Chemistry, 75, 1805-1811, 2003.
5.W.-P. Peng, Y. Cai, Y. T. Lee, and H.-C. Chang, 'Laser-induced fluorescence/ion trap as a detector for mass spectrometric analysis of nanoparticles ', International Journal of Mass Spectrometry, 229, 67-76, 2003.
6.W.-P. Peng, Y. Cai, and H.-C. Chang, 'Optical detection methods for mass spectrometry of macroions', Mass Spectrometry Reviews, 23, 443-465, 2004.
7.W.-P. Peng, I.-C. Yang, M.-W. Kang, Y. T. Lee, and H.-C. Chang, 'Measuring masses of single bacterial whole cells with a quadrupole ion trap', Journal of the American Chemical Society, 126, 11766-11767, 2004.
8.W.-P. Peng, J. W. Ting, Y. T. Lee, and H.-C. Chang, 'An averaging peak-to-peak voltage detector for absolute mass determination of single particles with quadrupole ion traps', Review of Scientific Instruments, 2004 (accepted).
9.彭文平、楊易昌、康名慰、高顥瑋、李遠哲、張煥正, '單細菌粒子質譜儀的介紹', 科儀新知, 142期, 58-64, 十月, 2004.
10.W.-P. Peng, I.-C. Yang, Y. T. Lee, and H.-C. Chang, 'Whole cell mass spectrometry: practice and theory, Analytical Chemistry, 2004 (in preparation).
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/39415-
dc.description.abstract生物大分子,如細菌或病毒,其尺度分別界於0.1微米∼5微米和0.02微米∼0.3微米之間,對於質譜學的探測而言,是一個很大的挑戰。在首章中,我們對傳統的游離型探測器、電荷感應型偵測器、熱感應型偵測器給一回顧性的介紹,說明其在探測生物大分子時所遭遇到的困難。本論文zh_TW
dc.description.abstractDetection of macroions represents a challenge in the field of mass spectrometry. The biological macroions discussed in this thesis, say bacterial or viral particles, having sizes ranging from 0.1 um to 5 um and 0.02 um to 0.3 um respectively are very difficult to detect by conventional mass spectrometry detection methods. In chapter I, we give an overview why the conventional detection methods including ionization-based detectors, charge-sensitive detectors, energy-sensitive detectors failed to detect such large particles in general. In this thesis, we propose using photon-sensitive detectors to detect macroions, by either elastic light scattering (ELS) or laser-induced fluorescence (LIF). In chapter II, we start to detect single particle in a three dimensional quadrupole ion trap by ELS method and precisely measure its mass based on the single particle’s motion. This method opens up new opportunities for high-precision mass measurement of single microbial particles and constitutes a top-down approach for rapid identification of microorganisms. In chapter III, we scan along the stability diagram and detect microparticles outside the trap with ELS method. The single particle mass spectra reveal its capability to detect particles with size greater than 100 nm.
When the particle size is smaller than 100 nm, according to Rayleigh-Debye theory, it is very difficult to be detected by ELS. The advances has been made in the detection of single fluorescent molecules in condense phase. This enables us to detect dye labeled particles with ion trap mass spectrometry. As we have demonstrated in this thesis, by coupling a new ion trap to the first ion trap mass spectrometer, the second trap can play a role to confine the ejected particles from the first ion trap, and thereby the detection of the LIF signal is made possible. In chapter IV, we show the mass spectra of 27 nm and 110 nm polystyrene nanoparticles. Finally, in chapter V, we discuss the possibility to obtain the mass spectra of viral particles. According to the observation from TEM study of HSV1 and Swinepox viruses, we have found their size distribution to be very narrow as compared to the bacterial samples. We propose to make a transparent ion trap to increase the optical collection efficiency. This transparent ion trap is a kind of an objective lens. Therefore, the conventional confocal optical path design and single molecule detection techniques can thus be applied to this new setup. With the aid of labeling fluorescent dye molecules or quantum dots (QDs), the single viral particle mass spectrometry with LIF detection may become a reality.
en
dc.description.provenanceMade available in DSpace on 2021-06-13T17:27:58Z (GMT). No. of bitstreams: 1
ntu-93-D90222020-1.pdf: 2450424 bytes, checksum: fc805f1d8ce7d5bc1871e152ae21e7ec (MD5)
Previous issue date: 2004
en
dc.description.tableofcontentsI. Introduction 1
A. Overview 1
B. Macroion Detection Methods 6
B.1 Energy-Sensitive Detection 6
B.2 Charge-Sensitive Detection 8
B.3 Photon-Sensitive Detection 11
B.3.1 Elastic Light Scattering 13
B.3.2 Laser-Induced Fluorescence 20
C. References 24
II. Measuring Masses of Single Particles in a Quadrupole
Ion Trap 38
A. Experimental Setup 38
B. Practical Theories in Single Particle Analysis 41
B.1 Mass-to-Charge Ratio Analysis 41
B.2 Generalized One Electron Differentials Theory 43
B.3 Distribution Theory for Aggregations of Single
Particles 45
C. Absolute Mass Determination of Single Bacterial Whole
Cells 47
D. Mass Standard vs. Size Standard for Synthetic Polymer
Microspheres 55
E. Whole Cell Mass Spectrometry 59
F. High Precision Averaging Peak Detector 60
F.1 Circuit design 60
F.2 Calibration and performance test 64
G. Precision and Accuracy 68
H. References 69
III. Single Particle Mass Spectrometry 71
A. Experimental Setup 71
B. Calibration of the Single Particle Mass Spectrometer 76
C. Results and Discussions 79
D. Charge Reduction, Ion Guide, and Ellipsoidal Reflector
for SPMS 88
E. Referencces 92
IV. Laser-induced fluorescence/ion trap as a detector for
mass spectrometric analysis of nanoparticles 98
A. Experimental setup 98
B. Ion sources 102
C. Frequency scan 104
D. Matching of two traps 106
E. Particle damping and dumping 109
F. Detection limits 115
G. Practical considerations 121
H. References 123
V. Mass Spectrometry of Viral Particles 126
A. Transparent ion trap 126
B. Single Nanoparticle Imaging with Dye Labeling
Techniques Using Cameras 129
C. Using a 2D Quadrupole Rod as Bottom-Up Approach 132
D. References 134
List of Publications 136
Patent Applications 138
Presentations and Posters 139
Research Award 140
dc.language.isoen
dc.subject離子阱質譜學zh_TW
dc.subject病毒zh_TW
dc.subject細菌zh_TW
dc.subject單粒子質譜學zh_TW
dc.subject大分子光學探測zh_TW
dc.subject散射光zh_TW
dc.subject螢光zh_TW
dc.subjectquadrupole ion trap mass spectrometryen
dc.subjectbacteriaen
dc.subjectlaser-induced fluorescenceen
dc.subjectelastic light scatteringen
dc.subjectvirusen
dc.subjectoptical detection of macroionsen
dc.subjectsingle particle mass spectrometryen
dc.title光探測法之單粒子質譜學zh_TW
dc.titleSingle Particle Mass Spectrometry with Optical Detection Methodsen
dc.typeThesis
dc.date.schoolyear93-1
dc.description.degree博士
dc.contributor.coadvisor張煥正(Huan-Cheng Chang)
dc.contributor.oralexamcommittee陳仲瑄(Chung-Hsuan Chen),謝建台(Jen-Taie Shiea),董 成 淵(Chen-Yuan Dong)
dc.subject.keyword病毒,細菌,單粒子質譜學,大分子光學探測,散射光,螢光,離子阱質譜學,zh_TW
dc.subject.keywordbacteria,quadrupole ion trap mass spectrometry,single particle mass spectrometry,optical detection of macroions,virus,elastic light scattering,laser-induced fluorescence,en
dc.relation.page140
dc.rights.note有償授權
dc.date.accepted2004-11-18
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept物理研究所zh_TW
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