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Elucidating the Interfacial Molecular Interaction Mechanisms of Silicone Adhesive, Polymer Degradation and Polymer Bio-Applications Using Advanced Spectroscopy
Elucidating the Interfacial Molecular Interaction Mechanisms of Silicone Adhesive, Polymer...
Elucidating the Interfacial Molecular Interaction Mechanisms of Silicone Adhesive, Polymer Degradation and Polymer Bio-Applications Using Advanced Spectroscopy

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자료유형  
 학위논문 서양
최종처리일시  
20250211152056
ISBN  
9798382739168
DDC  
620.11
저자명  
Lin, Ting.
서명/저자  
Elucidating the Interfacial Molecular Interaction Mechanisms of Silicone Adhesive, Polymer Degradation and Polymer Bio-Applications Using Advanced Spectroscopy
발행사항  
[Sl] : University of Michigan, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
195 p
주기사항  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
주기사항  
Advisor: Chen, Zhan.
학위논문주기  
Thesis (Ph.D.)--University of Michigan, 2024.
초록/해제  
요약In the past, SFG research has primarily focused on simple model systems. This thesis highlights the potential of using SFG to study buried polymer interfaces of practically applicable and commercial polymers, such as silicone adhesives, developing a tool to investigate real-world interfaces relevant to many applications. Also, this thesis provides an in-depth study on silicone/polymer buried solid/solid interface like first time probing the interfacial chemical reactions in situ and orientation analysis during curing. The SFG methodologies developed in this thesis are widely applicable for many polymer systems.High-performance adhesives become increasingly important across diverse applications due to the demand of energy efficiency. Adhesion is mediated by interfacial molecules and occurs at buried interfaces. Optimizing and controlling the adhesion often relies on understanding the interfacial molecular structure. However, it has always been challenging in both academia and industry to investigate such buried interfaces nondestructively. In this thesis, sum frequency generation (SFG) vibrational spectroscopy was applied to study molecular structures of buried interfaces to understand molecular mechanisms of polymer adhesion in situ.High-temperature vulcanized (HTV) silicone is one of the most commonly used silicone and the HTV silicone mentioned in this work is mainly based on the hydrosilylation curing chemistry, which is the addition reaction of Si-H and Si-vinyl group catalyzed by platinum catalyst. SFG was applied to study buried interfaces of HTV silicone composite systems and the results were correlated to adhesion measurement data to understand the molecular adhesion mechanisms. Silicone matrices with different added compositions such as adhesion promoters, fillers, and catalysts were investigated to understand the effects of various additives on the buried interfacial structure. The added filler appeared to reduce the interfacial segregation of the adhesion promoter at the silicone/substrate interface, while the adhesion catalyst can facilitate the interfacial segregation of adhesion promoter to enhance adhesion. SFG was also utilized to probe the interfacial chemical reaction between HTV silicone and polar polymer substrate in situ. This is the first time to directly monitor this process at buried interfaces of commercial silicone adhesive system. It illustrates that manipulating segregation and functionality of adhesion promoter, interfacial reaction, and surface composition at buried interfaces can substantially amplify silicone adhesion.Besides HTV silicone, room temperature vulcanized (RTV) silicone based on condensation curing was also investigated by SFG. Here the RTV silicone indicates the silicone involving the formation of crosslinked networks through chemical reactions between silanol groups and other reactive groups in formulated products such as alkoxysilanes or acetoxysilanes.This thesis also investigates the molecular interactions between biological molecules and polymer surfaces in situ. SFG was used to study molecular interactions between polystyrene and various peptides with different numbers of aromatic amino acids by monitoring the orientation changes of polystyrene phenyl groups and alpha-helical peptides during the interactions. It was found that the charge-charge interaction was the dominant interaction at the interface, which outperformed the π-π interaction.Polyethylene weathering mechanism was investigated and such research was included in this thesis as well. With global plastic production exceeding 300 million tons per year since 2014, plastics accumulating in the environment are increasing at an alarming rate. Globally, only a small portion of plastic waste is recycled. A comprehensive study on plastic degradation mechanisms can offer essential knowledge to ultimately understand the impact of the degraded materials, helping the development of strategies to mitigate such impact. Changes in the structure of polyethylene after exposure to UV irradiation depend on the exposure time and the polyethylene characteristics. This study employed multiple analytical tools and offered a systematic understanding of polyethylene degradation. This approach provides knowledge on how plastics behave in the environment and their degradation mechanisms.
일반주제명  
Materials science
일반주제명  
Polymer chemistry
일반주제명  
Optics
키워드  
Non-linear optics
키워드  
Sum frequency generation
키워드  
Silicone adhesives
키워드  
Interfacial molecular structure
키워드  
Adhesion promotion
기타저자  
University of Michigan Macromolecular Science & Engineering
기본자료저록  
Dissertations Abstracts International. 85-12B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aLin,  Ting.
■24510▼aElucidating  the  Interfacial  Molecular  Interaction  Mechanisms  of  Silicone  Adhesive,  Polymer  Degradation  and  Polymer  Bio-Applications  Using  Advanced  Spectroscopy
■260    ▼a[Sl]▼bUniversity  of  Michigan▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a195  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-12,  Section:  B.
■500    ▼aAdvisor:  Chen,  Zhan.
■5021  ▼aThesis  (Ph.D.)--University  of  Michigan,  2024.
■520    ▼aIn  the  past,  SFG  research  has  primarily  focused  on  simple  model  systems.  This  thesis  highlights  the  potential  of  using  SFG  to  study  buried  polymer  interfaces  of  practically  applicable  and  commercial  polymers,  such  as  silicone  adhesives,  developing  a  tool  to  investigate  real-world  interfaces  relevant  to  many  applications.  Also,  this  thesis  provides  an  in-depth  study  on  silicone/polymer  buried  solid/solid  interface  like  first  time  probing  the  interfacial  chemical  reactions  in  situ  and  orientation  analysis  during  curing.  The  SFG  methodologies  developed  in  this  thesis  are  widely  applicable  for  many  polymer  systems.High-performance  adhesives  become  increasingly  important  across  diverse  applications  due  to  the  demand  of  energy  efficiency.  Adhesion  is  mediated  by  interfacial  molecules  and  occurs  at  buried  interfaces.  Optimizing  and  controlling  the  adhesion  often  relies  on  understanding  the  interfacial  molecular  structure.  However,  it  has  always  been  challenging  in  both  academia  and  industry  to  investigate  such  buried  interfaces  nondestructively.  In  this  thesis,  sum  frequency  generation  (SFG)  vibrational  spectroscopy  was  applied  to  study  molecular  structures  of  buried  interfaces  to  understand  molecular  mechanisms  of  polymer  adhesion  in  situ.High-temperature  vulcanized  (HTV)  silicone  is  one  of  the  most  commonly  used  silicone  and  the  HTV  silicone  mentioned  in  this  work  is  mainly  based  on  the  hydrosilylation  curing  chemistry,  which  is  the  addition  reaction  of  Si-H  and  Si-vinyl  group  catalyzed  by  platinum  catalyst.  SFG  was  applied  to  study  buried  interfaces  of  HTV  silicone  composite  systems  and  the  results  were  correlated  to  adhesion  measurement  data  to  understand  the  molecular  adhesion  mechanisms.  Silicone  matrices  with  different  added  compositions  such  as  adhesion  promoters,  fillers,  and  catalysts  were  investigated  to  understand  the  effects  of  various  additives  on  the  buried  interfacial  structure.  The  added  filler  appeared  to  reduce  the  interfacial  segregation  of  the  adhesion  promoter  at  the  silicone/substrate  interface,  while  the  adhesion  catalyst  can  facilitate  the  interfacial  segregation  of  adhesion  promoter  to  enhance  adhesion.  SFG  was  also  utilized  to  probe  the  interfacial  chemical  reaction  between  HTV  silicone  and  polar  polymer  substrate  in  situ.  This  is  the  first  time  to  directly  monitor  this  process  at  buried  interfaces  of  commercial  silicone  adhesive  system.  It  illustrates  that  manipulating  segregation  and  functionality  of  adhesion  promoter,  interfacial  reaction,  and  surface  composition  at  buried  interfaces  can  substantially  amplify  silicone  adhesion.Besides  HTV  silicone,  room  temperature  vulcanized  (RTV)  silicone  based  on  condensation  curing  was  also  investigated  by  SFG.  Here  the  RTV  silicone  indicates  the  silicone  involving  the  formation  of  crosslinked  networks  through  chemical  reactions  between  silanol  groups  and  other  reactive  groups  in  formulated  products  such  as  alkoxysilanes  or  acetoxysilanes.This  thesis  also  investigates  the  molecular  interactions  between  biological  molecules  and  polymer  surfaces  in  situ.  SFG  was  used  to  study  molecular  interactions  between  polystyrene  and  various  peptides  with  different  numbers  of  aromatic  amino  acids  by  monitoring  the  orientation  changes  of  polystyrene  phenyl  groups  and  alpha-helical  peptides  during  the  interactions.  It  was  found  that  the  charge-charge  interaction  was  the  dominant  interaction  at  the  interface,  which  outperformed  the  π-π  interaction.Polyethylene  weathering  mechanism  was  investigated  and  such  research  was  included  in  this  thesis  as  well.  With  global  plastic  production  exceeding  300  million  tons  per  year  since  2014,  plastics  accumulating  in  the  environment  are  increasing  at  an  alarming  rate.  Globally,  only  a  small  portion  of  plastic  waste  is  recycled.  A  comprehensive  study  on  plastic  degradation  mechanisms  can  offer  essential  knowledge  to  ultimately  understand  the  impact  of  the  degraded  materials,  helping  the  development  of  strategies  to  mitigate  such  impact.  Changes  in  the  structure  of  polyethylene  after  exposure  to  UV  irradiation  depend  on  the  exposure  time  and  the  polyethylene  characteristics.  This  study  employed  multiple  analytical  tools  and  offered  a  systematic  understanding  of  polyethylene  degradation.  This  approach  provides  knowledge  on  how  plastics  behave  in  the  environment  and  their  degradation  mechanisms.
■590    ▼aSchool  code:  0127.
■650  4▼aMaterials  science
■650  4▼aPolymer  chemistry
■650  4▼aOptics
■653    ▼aNon-linear  optics
■653    ▼aSum  frequency  generation
■653    ▼aSilicone  adhesives
■653    ▼aInterfacial  molecular  structure
■653    ▼aAdhesion  promotion
■690    ▼a0495
■690    ▼a0794
■690    ▼a0752
■71020▼aUniversity  of  Michigan▼bMacromolecular  Science  &  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g85-12B.
■790    ▼a0127
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17162801▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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