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Atomic-Scale Simulations of Solvent Decomposition and Solid-State Ion Transport in Alkaline-Based Batteries
Atomic-Scale Simulations of Solvent Decomposition and Solid-State Ion Transport in Alkalin...
Atomic-Scale Simulations of Solvent Decomposition and Solid-State Ion Transport in Alkaline-Based Batteries

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자료유형  
 학위논문 서양
최종처리일시  
20250211152102
ISBN  
9798382739823
DDC  
540
저자명  
Fuhst, Mallory R.
서명/저자  
Atomic-Scale Simulations of Solvent Decomposition and Solid-State Ion Transport in Alkaline-Based Batteries
발행사항  
[Sl] : University of Michigan, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
81 p
주기사항  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
주기사항  
Advisor: Kurdak, Cagliyan;Siegel, Donald J.
학위논문주기  
Thesis (Ph.D.)--University of Michigan, 2024.
초록/해제  
요약Improving the safety of rechargeable Li-ion batteries is needed given their widespread and growing use. Of particular concern are failures involving thermal runaway, a key contributor of which is the buildup of gaseous species in the cell. Gases develop from the degradation of the liquid electrolyte, potentially facilitated by interactions with the electrode surfaces. The first portion of this dissertation investigates these processes by using first principles calculations to model the interactions of a common electrolyte solvent molecule with a cathode surface. These materials are thought to be electrochemically stable, but renormalization of the electrolyte window at the cathode surface may lead to side reactions even within normal battery operating conditions. Our work finds that the undercoordinated Co ions on the (1014) low energy surface of LiCoO2 are in an intermediate spin state that makes them more receptive to electrostatic coordination with EC. The barrier for the decomposition of EC into CO2 and acetaldehyde is 2.1 eV, which suggests a kinetically limited reaction pathway at nominal operating temperature. This barrier is expected to decrease as the cathode is delithiated during charging.Another strategy for increasing the safety of rechargeable batteries is to switch to a solid-state electrolyte (SSE). SSEs are more stable, but struggle to match a liquid's high ionic conductivity. One avenue for increasing the conductivity of an SSE is the paddlewheel effect: coordinated motion between a rotating anion group and a migrating cation. First reported for the high temperature (HT) polymorph of Li2SO4, the existence of this phenomena has been the subject of debate for decades. The second component of this dissertation uses aiMD to model dynamics associated with Li migration in high- and low-temperature (LT) Li2SO4. Analysis of the rotational dynamics of the anions reveals that the SO4 anions reorient in the HT polymorph but not the LT polymorph, even at temperatures above the phase transition. Likewise, the simulations identify numerous Li migration events in the HT phase but none in the LT polymorph. These observations are consistent with experimental measurements. Analysis of Li displacements and anion rotations in the HT phase indicate that cation hops and anion reorientations are correlated in space and in time. Additional evidence supporting correlated behavior derives from the similar the energy barrier for Li migration, 0.48 eV, and anion reorientation, 0.40 eV.To further probe the mechanisms associated with paddlewheel dynamics, the third portion of this dissertation draws comparisons with other alkali-metal-based sulfates, Na2SO4 and K2SO4. These solids exhibit structural transformations similar to that of Li2SO4, yet are not reported to be ionic conductors in their HT phases. Consistent with experiments, aiMD simulations exhibit limited cation mobility in these phases. Nevertheless, anion rotations are present in both HT Na2SO4 and K2SO4. Given that anion rotations are present in all of the HT polymorphs studied, why is Li2SO4 the only phase that is ionically-conductive? The crystal structure of the HT polymorphs appears to be the answer. HT-Li2SO4 adopts an FCC lattice that contains occupied Li tetrahedral sites and vacant octahedral sites, which mediate Li migration. HT Na2SO4 and K2SO4 are hexagonal and contain no empty cation sites. We conclude that the presence of anion rotations alone is insufficient to impart high ionic conductivity - cation mobility also requires a sufficient defect concentration.
일반주제명  
Chemistry
일반주제명  
Physics
일반주제명  
Materials science
일반주제명  
Applied physics
키워드  
Battery
키워드  
Li-ion battery
키워드  
Density Functional Theory
키워드  
Solid electrolyte
키워드  
Paddlewheel effect
키워드  
Electrolyte gassing
기타저자  
University of Michigan Applied Physics
기본자료저록  
Dissertations Abstracts International. 85-12B.
전자적 위치 및 접속  
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■1001  ▼aFuhst,  Mallory  R.
■24510▼aAtomic-Scale  Simulations  of  Solvent  Decomposition  and  Solid-State  Ion  Transport  in  Alkaline-Based  Batteries
■260    ▼a[Sl]▼bUniversity  of  Michigan▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a81  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-12,  Section:  B.
■500    ▼aAdvisor:  Kurdak,  Cagliyan;Siegel,  Donald  J.
■5021  ▼aThesis  (Ph.D.)--University  of  Michigan,  2024.
■520    ▼aImproving  the  safety  of  rechargeable  Li-ion  batteries  is  needed  given  their  widespread  and  growing  use.  Of  particular  concern  are  failures  involving  thermal  runaway,  a  key  contributor  of  which  is  the  buildup  of  gaseous  species  in  the  cell.  Gases  develop  from  the  degradation  of  the  liquid  electrolyte,  potentially  facilitated  by  interactions  with  the  electrode  surfaces.  The  first  portion  of  this  dissertation  investigates  these  processes  by  using  first  principles  calculations  to  model  the  interactions  of  a  common  electrolyte  solvent  molecule  with  a  cathode  surface.  These  materials  are  thought  to  be  electrochemically  stable,  but  renormalization  of  the  electrolyte  window  at  the  cathode  surface  may  lead  to  side  reactions  even  within  normal  battery  operating  conditions.  Our  work  finds  that  the  undercoordinated  Co  ions  on  the  (1014)  low  energy  surface  of  LiCoO2  are  in  an  intermediate  spin  state  that  makes  them  more  receptive  to  electrostatic  coordination  with  EC.  The  barrier  for  the  decomposition  of  EC  into  CO2  and  acetaldehyde  is  2.1  eV,  which  suggests  a  kinetically  limited  reaction  pathway  at  nominal  operating  temperature.  This  barrier  is  expected  to  decrease  as  the  cathode  is  delithiated  during  charging.Another  strategy  for  increasing  the  safety  of  rechargeable  batteries  is  to  switch  to  a  solid-state  electrolyte  (SSE).  SSEs  are  more  stable,  but  struggle  to  match  a  liquid's  high  ionic  conductivity.  One  avenue  for  increasing  the  conductivity  of  an  SSE  is  the  paddlewheel  effect:  coordinated  motion  between  a  rotating  anion  group  and  a  migrating  cation.  First  reported  for  the  high  temperature  (HT)  polymorph  of  Li2SO4,  the  existence  of  this  phenomena  has  been  the  subject  of  debate  for  decades.  The  second  component  of  this  dissertation  uses  aiMD  to  model  dynamics  associated  with  Li  migration  in  high-  and  low-temperature  (LT)  Li2SO4.  Analysis  of  the  rotational  dynamics  of  the  anions  reveals  that  the  SO4  anions  reorient  in  the  HT  polymorph  but  not  the  LT  polymorph,  even  at  temperatures  above  the  phase  transition.  Likewise,  the  simulations  identify  numerous  Li  migration  events  in  the  HT  phase  but  none  in  the  LT  polymorph.  These  observations  are  consistent  with  experimental  measurements.  Analysis  of  Li  displacements  and  anion  rotations  in  the  HT  phase  indicate  that  cation  hops  and  anion  reorientations  are  correlated  in  space  and  in  time.  Additional  evidence  supporting  correlated  behavior  derives  from  the  similar  the  energy  barrier  for  Li  migration,  0.48  eV,  and  anion  reorientation,  0.40  eV.To  further  probe  the  mechanisms  associated  with  paddlewheel  dynamics,  the  third  portion  of  this  dissertation  draws  comparisons  with  other  alkali-metal-based  sulfates,  Na2SO4  and  K2SO4.  These  solids  exhibit  structural  transformations  similar  to  that  of  Li2SO4,  yet  are  not  reported  to  be  ionic  conductors  in  their  HT  phases.  Consistent  with  experiments,  aiMD  simulations  exhibit  limited  cation  mobility  in  these  phases.  Nevertheless,  anion  rotations  are  present  in  both  HT  Na2SO4  and  K2SO4.  Given  that  anion  rotations  are  present  in  all  of  the  HT  polymorphs  studied,  why  is  Li2SO4  the  only  phase  that  is  ionically-conductive?  The  crystal  structure  of  the  HT  polymorphs  appears  to  be  the  answer.  HT-Li2SO4  adopts  an  FCC  lattice  that  contains  occupied  Li  tetrahedral  sites  and  vacant  octahedral  sites,  which  mediate  Li  migration.  HT  Na2SO4  and  K2SO4  are  hexagonal  and  contain  no  empty  cation  sites.  We  conclude  that  the  presence  of  anion  rotations  alone  is  insufficient  to  impart  high  ionic  conductivity  -  cation  mobility  also  requires  a  sufficient  defect  concentration.
■590    ▼aSchool  code:  0127.
■650  4▼aChemistry
■650  4▼aPhysics
■650  4▼aMaterials  science
■650  4▼aApplied  physics
■653    ▼aBattery
■653    ▼aLi-ion  battery
■653    ▼aDensity  Functional  Theory
■653    ▼aSolid  electrolyte
■653    ▼aPaddlewheel  effect
■653    ▼aElectrolyte  gassing
■690    ▼a0605
■690    ▼a0794
■690    ▼a0485
■690    ▼a0215
■71020▼aUniversity  of  Michigan▼bApplied  Physics.
■7730  ▼tDissertations  Abstracts  International▼g85-12B.
■790    ▼a0127
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17162840▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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