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Materials Design for Lithium Batteries With High Energy Density
Materials Design for Lithium Batteries With High Energy Density
Materials Design for Lithium Batteries With High Energy Density

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자료유형  
 학위논문 서양
최종처리일시  
20250211151433
ISBN  
9798383565995
DDC  
620.11
저자명  
Jin, Tianwei.
서명/저자  
Materials Design for Lithium Batteries With High Energy Density
발행사항  
[Sl] : Columbia University, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
129 p
주기사항  
Source: Dissertations Abstracts International, Volume: 86-01, Section: B.
주기사항  
Advisor: Yang, Yuan.
학위논문주기  
Thesis (Ph.D.)--Columbia University, 2024.
초록/해제  
요약Lithium-ion batteries (LIBs) play a pivotal role in advancing transportation electrification, offering a crucial solution to address climate change and fossil fuel depletion, but the current energy density of LIBs remains unsatisfying, limiting electric transportation range. To address this limitation, extensive efforts focus on developing novel electrode materials, including high-voltage cathodes and high-specific-capacity electrodes. However, the pursuit of higher energy densities introduces safety concerns due to the higher possibility of thermal runaway and flammable nature of conventional liquid electrolytes. In this doctoral thesis, I will present several innovative strategies for high-performance lithium battery systems aimed at enhancing the mileage of electric transportation without compromising or even enhancing safety.The first part (Chapter 3) discusses a novel design for structural batteries. Structural batteries are the energy storage devices with enhanced mechanical properties integrated as structural components in vehicles to reduce vehicle weights and increase mileage. Through the development of a scalable and feasible tree-root-like lamination at the electrode/separator interface, an 11-fold enhancement in the flexural modulus of pouch cells is achieved, and the underlying mechanism is revealed by finite element simulations. This lamination has a minimal impact on the electrochemical performance of LIBs and the smallest reported specific energy reduction of ~3% in structural batteries. The prototype "electric wings" showcases stable flight for an aircraft model, highlighting the effectiveness and scalability of engineering interfacial adhesion in developing structural batteries with superior mechanical and electrochemical properties.The second part (Chapter 4) presents a design rule for polymer electrolytes to enhance lithium metal battery safety. Lithium metal batteries are attractive for electric transportation due to their high energy densities, but their application is hindered by the safety concerns from dendrite growth. In this work, we observe that if the compositions of polyethylene oxide (PEO) electrolytes are near the boundary between amorphous and polymer-rich regions, concentration polarization in electrolytes will induce a phase transformation and create a PEO-rich phase at the electrode surface. This new phase is mechanically rigid with a Young's modulus of ∼1-3 GPa so that it can suppress lithium dendrites, which allows Li/PEO/LiFePO4 cells with such a phase transformation demonstrate superior lithium reversibility without dendrites for 100 cycles.The third part (Chapter 5) proposes an innovative cathode design for all-solid-state Li-S batteries (ASSLSBs) which have ultra-high energy densities and enhanced battery safety. However, conventional cathode designs of filling sulfur in carbon hosts suffer from accelerated decomposition of electrolytes and sulfur detachment, leading to significant capacity loss. As a solution, I propose that nonconductive polar hosts allow long cycling life of ASSLSBs via stabilizing the adjacent electrolytes and bonding sulfur/Li2S steadily to avoid detachment. By using a mesoporous SiO2 host filled with 70 wt.% sulfur as the cathode, we demonstrate steady cycling in ASSLSBs with a capacity reversibility of 95.1% in the initial cycle and a discharge capacity of 1446 mAh g-1 after 500 cycles at C/5.
일반주제명  
Materials science
일반주제명  
Polymer chemistry
일반주제명  
Physical chemistry
일반주제명  
Alternative energy
키워드  
Lithium battery
키워드  
Lithium sulfur battery
키워드  
Polymer electrolytes
키워드  
Solid-state battery
키워드  
Structural battery
키워드  
Transportation electrification
기타저자  
Columbia University Materials Science and Engineering
기본자료저록  
Dissertations Abstracts International. 86-01B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aJin,  Tianwei.
■24510▼aMaterials  Design  for  Lithium  Batteries  With  High  Energy  Density
■260    ▼a[Sl]▼bColumbia  University▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a129  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-01,  Section:  B.
■500    ▼aAdvisor:  Yang,  Yuan.
■5021  ▼aThesis  (Ph.D.)--Columbia  University,  2024.
■520    ▼aLithium-ion  batteries  (LIBs)  play  a  pivotal  role  in  advancing  transportation  electrification,  offering  a  crucial  solution  to  address  climate  change  and  fossil  fuel  depletion,  but  the  current  energy  density  of  LIBs  remains  unsatisfying,  limiting  electric  transportation  range.  To  address  this  limitation,  extensive  efforts  focus  on  developing  novel  electrode  materials,  including  high-voltage  cathodes  and  high-specific-capacity  electrodes.  However,  the  pursuit  of  higher  energy  densities  introduces  safety  concerns  due  to  the  higher  possibility  of  thermal  runaway  and  flammable  nature  of  conventional  liquid  electrolytes.  In  this  doctoral  thesis,  I  will  present  several  innovative  strategies  for  high-performance  lithium  battery  systems  aimed  at  enhancing  the  mileage  of  electric  transportation  without  compromising  or  even  enhancing  safety.The  first  part  (Chapter  3)  discusses  a  novel  design  for  structural  batteries.  Structural  batteries  are  the  energy  storage  devices  with  enhanced  mechanical  properties  integrated  as  structural  components  in  vehicles  to  reduce  vehicle  weights  and  increase  mileage.  Through  the  development  of  a  scalable  and  feasible  tree-root-like  lamination  at  the  electrode/separator  interface,  an  11-fold  enhancement  in  the  flexural  modulus  of  pouch  cells  is  achieved,  and  the  underlying  mechanism  is  revealed  by  finite  element  simulations.  This  lamination  has  a  minimal  impact  on  the  electrochemical  performance  of  LIBs  and  the  smallest  reported  specific  energy  reduction  of  ~3%  in  structural  batteries.  The  prototype  "electric  wings"  showcases  stable  flight  for  an  aircraft  model,  highlighting  the  effectiveness  and  scalability  of  engineering  interfacial  adhesion  in  developing  structural  batteries  with  superior  mechanical  and  electrochemical  properties.The  second  part  (Chapter  4)  presents  a  design  rule  for  polymer  electrolytes  to  enhance  lithium  metal  battery  safety.  Lithium  metal  batteries  are  attractive  for  electric  transportation  due  to  their  high  energy  densities,  but  their  application  is  hindered  by  the  safety  concerns  from  dendrite  growth.  In  this  work,  we  observe  that  if  the  compositions  of  polyethylene  oxide  (PEO)  electrolytes  are  near  the  boundary  between  amorphous  and  polymer-rich  regions,  concentration  polarization  in  electrolytes  will  induce  a  phase  transformation  and  create  a  PEO-rich  phase  at  the  electrode  surface.  This  new  phase  is  mechanically  rigid  with  a  Young's  modulus  of  ∼1-3  GPa  so  that  it  can  suppress  lithium  dendrites,  which  allows  Li/PEO/LiFePO4  cells  with  such  a  phase  transformation  demonstrate  superior  lithium  reversibility  without  dendrites  for  100  cycles.The  third  part  (Chapter  5)  proposes  an  innovative  cathode  design  for  all-solid-state  Li-S  batteries  (ASSLSBs)  which  have  ultra-high  energy  densities  and  enhanced  battery  safety.  However,  conventional  cathode  designs  of  filling  sulfur  in  carbon  hosts  suffer  from  accelerated  decomposition  of  electrolytes  and  sulfur  detachment,  leading  to  significant  capacity  loss.  As  a  solution,  I  propose  that  nonconductive  polar  hosts  allow  long  cycling  life  of  ASSLSBs  via  stabilizing  the  adjacent  electrolytes  and  bonding  sulfur/Li2S  steadily  to  avoid  detachment.  By  using  a  mesoporous  SiO2  host  filled  with  70  wt.%  sulfur  as  the  cathode,  we  demonstrate  steady  cycling  in  ASSLSBs  with  a  capacity  reversibility  of  95.1%  in  the  initial  cycle  and  a  discharge  capacity  of  1446  mAh  g-1  after  500  cycles  at  C/5.
■590    ▼aSchool  code:  0054.
■650  4▼aMaterials  science
■650  4▼aPolymer  chemistry
■650  4▼aPhysical  chemistry
■650  4▼aAlternative  energy
■653    ▼aLithium  battery
■653    ▼aLithium  sulfur  battery
■653    ▼aPolymer  electrolytes
■653    ▼aSolid-state  battery
■653    ▼aStructural  battery
■653    ▼aTransportation  electrification
■690    ▼a0794
■690    ▼a0495
■690    ▼a0363
■690    ▼a0494
■71020▼aColumbia  University▼bMaterials  Science  and  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g86-01B.
■790    ▼a0054
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17161706▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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