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Synthesis, Characterization, and Application of Extremely Small-sized Iron Oxide Nanoparticles : 극소 산화철 나노입자의 합성, 분석 및 응용

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dc.contributor.advisor현택환-
dc.contributor.author김병효-
dc.date.accessioned2017-07-13T08:34:19Z-
dc.date.available2017-07-13T08:34:19Z-
dc.date.issued2013-02-
dc.identifier.other000000010490-
dc.identifier.urihttps://hdl.handle.net/10371/119665-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2013. 2. 현택환.-
dc.description.abstractExtremely small-sized nanoparticles, of size < 3 nm, have become important because their optical, magnetic, and catalytic properties are distinguished from those of large sized nanoparticles or molecules. Their properties are strongly dependent on their dimension, so the size-controlled synthesis of extremely small-sized nanoparticles is essential for further applications. Iron oxide nanoparticles are very important materials because of their interesting size-dependent magnetic properties. Extremely small-sized iron oxide nanoparticles exhibit weak magnetization, and can be applied to biomedical applications.
The present work focuses on the large scale synthesis, characterization, and application of extremely small-sized iron oxide nanoparticles (ESIONs). The ESIONs were synthesized by thermal decomposition of iron-oleate complexes, and were applied as T1 magnetic resonance imaging (MRI) contrast agents. Sizes and size distribution of the nanoparticles were characterized in an easy and precise way through matrix-assisted laser desorption/ionization - time-of-flight (MALDI-TOF) mass spectrometry.
Firstly, gram-scale synthesis of (ESIONs) was achieved by thermal decomposition of iron oleate complex in the presence of oleyl alcohol. Magnetization of small iron oxide nanoparticles was much less than that of large-sized nanoparticles due to their small magnetic moment and the spin canting effect. The small magnetic moment of the ESIONs enables them to be used as T1 MRI contrast agents. ESION-enhanced in vivo MR imaging showed bright T1 image which is maintained for a long time attributed to their moderate size.
Secondly, a rapid and reliable method to determine the sizes and size distributions of extremely small-sized iron oxide nanoparticles is presented using mass spectrometrometry. The mass spectra obtained from MALDI-TOF mass spectrometry could readily provide size information using a simple equation. The size distribution obtained from the mass spectrum is well-matched with the data acquired from transmission electron microscope (TEM) which requires long and tedious analysis work. The size distribution from mass spectrum is highly resolved and is capable of detecting a difference in size of even few Angstroms. The mass spectrum technique was used for the investigation of formation mechanism of iron oxide nanoparticles. From ex situ measurements, it was observed that iron-oxo clusters were produced from the iron precursor, and eventually 3 nm iron oxide nanoparticles were achieved. The mass-to-size estimation will be found as easy and accurate analytical tool for various purposes including the formation mechanism studies to develop new synthetic methods for various kinds of nanoparticles with desired characteristics.
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dc.description.tableofcontentsChapter 1 Introduction: Extremely Small-sized Nanoparticles 1
1.1 Introduction 1
1.2 Properties of Extremely Small-sized Nanoparticles 5
1.2.1 Quantum Size Effect 5
1.2.1.1 Fluorescent of Metal Nanoparticles 6
1.2.1.2 Spin Quantum Effect 7
1.2.2 Surface Effect 9
1.2.2.1 Ferromagnetism at Metal Surface 11
1.2.2.2 Paramagnetism of Magnetic Nanoparticles 14
1.2.2.3 Chemical Properties 17
1.2.2.4 Ligand Pinning Effect 18
1.3 Synthetic Methods of Extremely Small-sized Nanoparticles 19
1.3.1 Extremely Small-sized Metal Nanoparticles 20
1.3.2 Extremely Small-sized Metal Oxide Nanoparticles 25
1.3.3 Extremely Small-sized Chalcogenide Nanoparticles 28
1.4 Characterization of Extremely Small-sized Nanoparticles 30
1.4.1 Microscopy 30
1.4.2 Mass spectrometry 34
1.4.3 Other Characterization Methods 37
1.5 Dissertation Overview 38
1.6 References 40
Chapter 2 Large-scale Synthesis of Extremely Small-sized Iron Oxide Nanoparticles for MRI Application 51
2.1 Introduction 51
2.2 Experimental Section 56
2.3 Result and Discussion 64
2.3.1 Synthesis of Extremely Small-sized Iron Oxide Nanoparticles 64
2.3.2 Mechanism 73
2.3.3 Characterization 79
2.3.3.1 Structure 79
2.3.3.2 Magnetic Properties 82
2.3.4 Water Transfer 90
2.3.5 MRI Application 95
2.4 Conclusion 100
2.5 References 101
Chapter 3 Sizing by Weighing: Characterizing Sizes of Extremely Small-sized Iron Oxide Nanoparticles Using MALDI-TOF Mass Spectrometry 107
3.1 Introduction 107
3.2 Experimental Section 111
3.3 Result and Discussion 116
3.3.1 Preparation of Samples 116
3.3.2 Estimating Size of Extremely Small-sized Iron Oxide Nanoparticles by MALDI-TOF MS 122
3.3.3 Mass-to-size Estimation Method by Using Simple Equation 126
3.3.3.1 Derivation of Equation for Mass-to-size Estimation 126
3.3.3.2 Determination of Sizes and Size Distributions Using Deviced Equation 134
3.3.3.3 Advantages of the Mass-to-size Estimation Method 144
3.3.3.4 Generalizations of the Mass-to-size Estimation Method 148
3.3.4 Growth Mechanism 155
3.4 Conclusion 163
3.5 References 164
Bibliography 168
국문초록 175
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dc.formatapplication/pdf-
dc.format.extent6741207 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectiron oxide-
dc.subjectnanoparticles-
dc.subjectmagnetic resonance imaging-
dc.subjectmass spectrometry-
dc.subjectformation mechanism-
dc.subject.ddc660-
dc.titleSynthesis, Characterization, and Application of Extremely Small-sized Iron Oxide Nanoparticles-
dc.title.alternative극소 산화철 나노입자의 합성, 분석 및 응용-
dc.typeThesis-
dc.contributor.AlternativeAuthorKim, Byung Hyo-
dc.description.degreeDoctor-
dc.citation.pagesxvi, 176-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2013-02-
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