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DC Field | Value | Language |
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dc.contributor.advisor | Bernasek, Steven L | - |
dc.contributor.author | Frederick, Esther Frederick | - |
dc.contributor.other | Chemistry Department | - |
dc.date.accessioned | 2016-06-09T15:01:33Z | - |
dc.date.available | 2016-09-01T05:23:11Z | - |
dc.date.issued | 2016 | - |
dc.identifier.uri | http://arks.princeton.edu/ark:/88435/dsp01zg64tp34m | - |
dc.description.abstract | Since the dawn of chemistry, the study of reactions has taken place in homogenous systems. There is a wealth of knowledge relating to the kinetics and thermodynamics of such reactions. However, the increasingly smaller materials used in today’s advancing technology requires novel heterogeneous chemistries at solid-liquid interfaces. Control over surface chemistry has numerous applications, including increasing biocompatibility for medical use, catalysis, improving cosmetic products and developing novel electronic devices. As we move toward a world with self-healing materials, single molecule circuits and nanoscale machines, the ability to attach molecules to a surface in a well-organized fashion is increasingly important. Astoundingly, under appropriate conditions, single molecules self-arrange into highly ordered nanomaterials using guidelines internally coded by its elements and their arrangement in the molecule. Being able to exploit self-assembly is invaluable to successful fast-paced engineering of nanomaterials. However, quantifying the interplay between forces and developing a predictive model for 2D self-assembly is to date unsolved. An additional question that largely remains unanswered is, to what extent can relationships known from homogenous chemistry aid in understanding the self-assembly of heterogeneous systems? The work in thesis was motivated by these fundamental problems. This thesis includes studies of both physisorbed and chemisorbed systems. Chapters 3 and 4 explore the effect of H-bonding and van der Waals interactions on physisorbed self-assembled monolayer (SAM) morphology using a series of 5-alkoxyisophthalamides and 5-alkoxyisophthalic acids on HOPG. The relationship between self-assembly in heterogeneous versus homogenous phases was examined in Chapter 3 and continued in chemisorbed systems in Chapter 5. The results of substituent effects on formation kinetic studies of chemisorbed styrene SAMs on H-Si fit to equations quantifying substituent effects in homogenous reactions. These studies provide evidence for the success in applying well quantified homogeneous relationships to lesser explored chemistry at a solid-liquid interface. As interest in unique surface functionalization grew, this thesis expanded to include collaborations requiring surfaces exhibiting specific properties. These projects, described in Chapter 6 and 7, include surface assemblies for fullerene bombardment and SAMs for quantum control experiments. The design, post-modification and characterization of Si-phosphonate and Au-carbene linked SAMs for designated applications are presented. | - |
dc.language.iso | en | - |
dc.publisher | Princeton, NJ : Princeton University | - |
dc.relation.isformatof | The Mudd Manuscript Library retains one bound copy of each dissertation. Search for these copies in the library's main catalog: http://catalog.princeton.edu/ | - |
dc.subject | heterogenous chemistry | - |
dc.subject | monolayers | - |
dc.subject | morphology | - |
dc.subject | self-assembly | - |
dc.subject | solid-liquid interface | - |
dc.subject | surface | - |
dc.subject.classification | Chemistry | - |
dc.subject.classification | Materials Science | - |
dc.subject.classification | Nanoscience | - |
dc.title | Self-Assembled Monolayers at the Solid-Liquid Interface: Design, Post-Modification and Effects of Molecular Variations as Compared to Homogenous Systems | - |
dc.type | Academic dissertations (Ph.D.) | - |
pu.projectgrantnumber | 690-2143 | - |
pu.embargo.terms | 2016-09-01 | - |
Appears in Collections: | Chemistry |
Files in This Item:
File | Description | Size | Format | |
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Frederick_princeton_0181D_11773.pdf | 3.91 MB | Adobe PDF | View/Download |
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