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The Influence of Dynamic Bonds on Mechanical Properties, Electric-Field Responsiveness, and Dissolution of Polymers
The Influence of Dynamic Bonds on Mechanical Properties, Electric-Field Responsiveness, an...
The Influence of Dynamic Bonds on Mechanical Properties, Electric-Field Responsiveness, and Dissolution of Polymers

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자료유형  
 학위논문 서양
최종처리일시  
20260311091459.5
ISBN  
9798283137605
DDC  
006
저자명  
Cai, Hongyi
서명/저자  
The Influence of Dynamic Bonds on Mechanical Properties, Electric-Field Responsiveness, and Dissolution of Polymers / Hongyi Cai
발행사항  
[Sl] : Cornell University, 2025
형태사항  
1 electronic resource (184 pages)
주기사항  
Source: Dissertations Abstracts International, Volume: 86-12, Section: B.
주기사항  
Advisors: Silberstein, Meredith Committee members: Suntivich, Jin; Shepherd, Robert.
학위논문주기  
- Ph.D. : Cornell University, 2025.
초록/해제  
요약Dynamic bonds have attracted growing interests from material researchers as they offer a variety of advanced properties, like shape memory, self-healing, recyclability, tuned relaxation, high toughness, surface adaptation, and so on. They also enable material to respond to external stimuli like heat, pH, light, humidity, electric fields, and magnetic fields. Within a wide range of different dynamic bonds, ionic interactions and metal-ligand coordinating bonds are of particular interest, as they can be found in many biomaterials, unlocking the potential to develop biomimetic and biocompatible materials. This dissertation reveals how ionic bonds affect mechanical properties of polymer materials including stiffness, stretchability, deformation recovery, strain rate sensitivity, and self-healing property. Moving on, the effect of including counterions in semi-interpenetrating hydrogels with polyelectrolytes is also studied. Based on the result, regulation of hydrogel stiffness with an electric field is realized. Finally, non-destructive methods of reclaiming polydimethylsiloxane (PDMS) crosslinked by metal-ligand coordinating bonds are tested.This dissertation starts with an investigation of how ionic interactions in elastomers affect their mechanical properties, specifically when the material is highly stretchable. This is realized by designing and making materials assembled from oppositely charged acrylic copolymers. we confirmed the formations of ionic bonds within the material via vibration spectroscopy techniques, and demonstrated through various mechanical test methods that ionic interactions can enhance stiffness, strength, and deformation recovery of materials, yet they also restrict stretchability. We also showed the strain rate sensitivity of these materials, and how hydrophilicity of material affects the self-healing property.Moving on from understanding the impact of ionic bonds on mechanical properties, we designed a semi-interpenetrating polymer network hydrogel containing polyelectrolyte complexes as well as counterions and its stiffness can be regulated with an electric field with minimal actuation. We showed that removing counterions by diffusion can increase the stiffness of the hydrogel. With this finding, we confirmed counterion removal via electrodialysis and realized reversible time-dependent stiffness control when applying an electric field. A model was implemented to simulate ion transport in the material. Finally, we designed a device in combination with the hydrogel which gives a spatially variable stiffness haptic interface controlled with an electric field and it has both reversibility and cyclability.In the final chapter, we focus on studying the dissolution kinetics of metal-ligand coordinated PDMS network. We confirmed removal of metal ions with tetrasodium ethylenediaminetetraacetic acid (EDTA·4Na) by comparing Fourier transform infrared (FTIR) spectra and monotonic tensile test results of material formed from original PDMS and reclaimed PDMS. Based on this finding, a network dissolution method was designed to measure dissolution kinetics of the material in EDTA·4Na solution. Impact of counterions, metal ions, and molecular weight on this process was demonstrated.The systematic study of polymers with dynamic bonds (ionic interactions and metal-ligand coordinating bonds) in this dissertation provides insights into the design of new advanced materials with various functionalities.
언어주기  
English
일반주제명  
Materials science
일반주제명  
Polymer chemistry
일반주제명  
Molecular chemistry
키워드  
Dynamic bonds
키워드  
Electric field
키워드  
Ionic interactions
키워드  
Mechanical properties
키워드  
Metal-ligand coordinating bonds
키워드  
Responsive polymers
기타저자  
Cornell University Materials Science and Engineering
기본자료저록  
Dissertations Abstracts International. 86-12B.
전자적 위치 및 접속  
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MARC

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■040    ▼aMiAaPQD▼beng▼cMiAaPQD▼erda
■082    ▼a006
■1001  ▼aCai,  Hongyi▼eauthor.▼0(orcid)0000-0001-7956-2310
■24510▼aThe  Influence  of  Dynamic  Bonds  on  Mechanical  Properties,  Electric-Field  Responsiveness,  and  Dissolution  of  Polymers  ▼cHongyi  Cai
■260    ▼a[Sl]▼bCornell  University▼c2025
■264  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2025
■300    ▼a1  electronic  resource  (184  pages)
■336    ▼atext▼btxt▼2rdacontent
■337    ▼acomputer▼bc▼2rdamedia
■338    ▼aonline  resource▼bcr▼2rdacarrier
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-12,  Section:  B.
■500    ▼aAdvisors:  Silberstein,  Meredith    Committee  members:  Suntivich,  Jin;  Shepherd,  Robert.
■5021  ▼bPh.D.▼cCornell  University▼d2025.
■520    ▼aDynamic  bonds  have  attracted  growing  interests  from  material  researchers  as  they  offer  a  variety  of  advanced  properties,  like  shape  memory,  self-healing,  recyclability,  tuned  relaxation,  high  toughness,  surface  adaptation,  and  so  on.  They  also  enable  material  to  respond  to  external  stimuli  like  heat,  pH,  light,  humidity,  electric  fields,  and  magnetic  fields.  Within  a  wide  range  of  different  dynamic  bonds,  ionic  interactions  and  metal-ligand  coordinating  bonds  are  of  particular  interest,  as  they  can  be  found  in  many  biomaterials,  unlocking  the  potential  to  develop  biomimetic  and  biocompatible  materials.  This  dissertation  reveals  how  ionic  bonds  affect  mechanical  properties  of  polymer  materials  including  stiffness,  stretchability,  deformation  recovery,  strain  rate  sensitivity,  and  self-healing  property.  Moving  on,  the  effect  of  including  counterions  in  semi-interpenetrating  hydrogels  with  polyelectrolytes  is  also  studied.  Based  on  the  result,  regulation  of  hydrogel  stiffness  with  an  electric  field  is  realized.  Finally,  non-destructive  methods  of  reclaiming  polydimethylsiloxane  (PDMS)  crosslinked  by  metal-ligand  coordinating  bonds  are  tested.This  dissertation  starts  with  an  investigation  of  how  ionic  interactions  in  elastomers  affect  their  mechanical  properties,  specifically  when  the  material  is  highly  stretchable.  This  is  realized  by  designing  and  making  materials  assembled  from  oppositely  charged  acrylic  copolymers.  we  confirmed  the  formations  of  ionic  bonds  within  the  material  via  vibration  spectroscopy  techniques,  and  demonstrated  through  various  mechanical  test  methods  that  ionic  interactions  can  enhance  stiffness,  strength,  and  deformation  recovery  of  materials,  yet  they  also  restrict  stretchability.  We  also  showed  the  strain  rate  sensitivity  of  these  materials,  and  how  hydrophilicity  of  material  affects  the  self-healing  property.Moving  on  from  understanding  the  impact  of  ionic  bonds  on  mechanical  properties,  we  designed  a  semi-interpenetrating  polymer  network  hydrogel  containing  polyelectrolyte  complexes  as  well  as  counterions  and  its  stiffness  can  be  regulated  with  an  electric  field  with  minimal  actuation.  We  showed  that  removing  counterions  by  diffusion  can  increase  the  stiffness  of  the  hydrogel.  With  this  finding,  we  confirmed  counterion  removal  via  electrodialysis  and  realized  reversible  time-dependent  stiffness  control  when  applying  an  electric  field.  A  model  was  implemented  to  simulate  ion  transport  in  the  material.  Finally,  we  designed  a  device  in  combination  with  the  hydrogel  which  gives  a  spatially  variable  stiffness  haptic  interface  controlled  with  an  electric  field  and  it  has  both  reversibility  and  cyclability.In  the  final  chapter,  we  focus  on  studying  the  dissolution  kinetics  of  metal-ligand  coordinated  PDMS  network.  We  confirmed  removal  of  metal  ions  with  tetrasodium  ethylenediaminetetraacetic  acid  (EDTA·4Na)  by  comparing  Fourier  transform  infrared  (FTIR)  spectra  and  monotonic  tensile  test  results  of  material  formed  from  original  PDMS  and  reclaimed  PDMS.  Based  on  this  finding,  a  network  dissolution  method  was  designed  to  measure  dissolution  kinetics  of  the  material  in  EDTA·4Na  solution.  Impact  of  counterions,  metal  ions,  and  molecular  weight  on  this  process  was  demonstrated.The  systematic  study  of  polymers  with  dynamic  bonds  (ionic  interactions  and  metal-ligand  coordinating  bonds)  in  this  dissertation  provides  insights  into  the  design  of  new  advanced  materials  with  various  functionalities.
■546    ▼aEnglish
■590    ▼aSchool  code:  0058
■650  4▼aMaterials  science
■650  4▼aPolymer  chemistry
■650  4▼aMolecular  chemistry
■653    ▼aDynamic  bonds
■653    ▼aElectric  field
■653    ▼aIonic  interactions
■653    ▼aMechanical  properties
■653    ▼aMetal-ligand  coordinating  bonds
■653    ▼aResponsive  polymers
■7102  ▼aCornell  University▼bMaterials  Science  and  Engineering.▼edegree  granting  institution.
■7201  ▼aSilberstein,  Meredith▼edegree  supervisor.
■7730  ▼tDissertations  Abstracts  International▼g86-12B.
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17357294▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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