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Understanding and Controlling the Reactivity of Oxygen Reduction and Methanol Oxidation Electrocatalysts
Understanding and Controlling the Reactivity of Oxygen Reduction and Methanol Oxidation El...
Understanding and Controlling the Reactivity of Oxygen Reduction and Methanol Oxidation Electrocatalysts

상세정보

자료유형  
 학위논문 서양
최종처리일시  
20260202105652
ISBN  
9798265452672
DDC  
540
저자명  
Hua, Qi.
서명/저자  
Understanding and Controlling the Reactivity of Oxygen Reduction and Methanol Oxidation Electrocatalysts
발행사항  
[Sl] : University of Illinois at Urbana-Champaign, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
151 p
주기사항  
Source: Dissertations Abstracts International, Volume: 87-06, Section: B.
주기사항  
Advisor: Gewirth, Andrew A.
학위논문주기  
Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2024.
초록/해제  
요약Creating sustainable technologies that can meet the rising global energy demand, introduce innovative energy conservation methods, and minimize the environmental footprint of energy production and consumption is immensely important. In this context, deep foundational knowledge is essential for both the innovation and development of these technologies. Particularly, understanding the basics of the electrocatalysis process, which is important in energy conversion devices like fuel cells, is essential. The oxygen reduction reaction (ORR) at the fuel cell cathode and the methanol oxidation reaction (MOR) at the anode serve as prime examples of electrocatalytic reactions requiring deeper mechanistic insights and advancements in effective electrocatalysts. Chapter 1 presents the essential background pertinent to the scope of my research. Chapter 2 explores how support materials influence ORR catalyst performance. In Chapters 3 and 4, it is shown how changes to electrode morphology significantly affect the activities of MOR and ORR catalysts, respectively. Taken together, this research enhances comprehension of critical energy conversion reactions, proposes methods for manipulating catalyst reactivity, and offers direction for advancing sustainable technological developments. Chapter 2 reports the oxygen reduction reaction (ORR) activity in acid of a Fe porphyrin on different supports. While the activity is high (E1/2 = 0.34 V vs. RHE with n = 3.8) when the Fe porphyrin is adsorbed on XC72 (a graphitic carbon), this activity is much lower when the porphyrin is adsorbed on either MoS2 (E1/2 = −0.15 V vs. RHE with n = 2.2) or g-C3N4 (E1/2 = −0.24 V vs. RHE with n = 3.1). Electron paramagnetic resonance (EPR), X-ray absorption fine structure (XAFS), and magnetometry measurements show the electronic structure around the Fe center is the same for all three supports. Only the Fe porphyrin supported on XC72 exhibits a pH XC72 relative to the other supports, suggests that the support-electrolyte interaction controls the ORR activity. Modification of MoS2 to increase its hydrophilicity results in a more active ORR catalyst. Chapter 3 studies the methanol oxidation reaction (MOR) on very rough Pt surfaces. We develop an electrodeposition method yielding Pt electrodes with high roughness factors (Rf 80) controlled by varying electrodeposition time or by polymer co-deposition. These rough electrodes exhibit a linear MOR response at potentials up to 1.4 V vs. RHE, in contrast to the hysteretic behavior reported in numerous prior studies. This effect is found in both acidic and basic electrolytes. Studies show that increased surface roughness increases the surface concentration of methanol thereby inhibiting the formation of Pt oxides at higher potentials, which are known to poison subsequent methanol oxidation activity. The potential at which methanol oxidation poisoning occurs is found to be logarithmically dependent on the bulk methanol concentration with varying slopes in acidic and basic media. The origin of the different sensitivity in basic relative to acidic electrolyte is found to be a result of different reaction order with respect to methanol. This study provides methods to enhance the rate of organic molecule oxidation at electrode surfaces that can be applied to both electrosynthesis and direct methanol fuel cell applications. Chapter 4 investigates a novel approach to tune the d-band center and enhance the oxygen reduction reaction (ORR) activity of Pt material without relying on foreign metals or the process of alloying/dealloying. It is known that Pt exhibits suboptimal ORR catalytic activity due to its strong binding to oxygen, therefore requiring a downshift in the d-band center by approximately 0.2 eV to weaken the Pt-O binding energy and boost ORR kinetics. We found that the d-band center can be tuned by inducing microstrain in the Pt electrodeposit, simply achieved by introducing polymer into the electrodeposition bath. Pt electrodes (Pt-P1 and Pt-PLA) prepared with the addition of Poly-N-(6-aminohexyl)acrylamide (P1) or Poly-L-arginine (PLA) exhibit improved ORR activity compared to Pt electrodeposited without polymer addition (Pt-alone) in both acidic and basic environments, with the order of activity being Pt-P1 Pt-PLA Pt-alone. Pt-P1 exhibits a positive shift of E1/2 by 90 mV vs. Pt-alone in basic solution, comparable to other reported high-activity ORR catalysts. Scanning electron microscopy (SEM) shows the presence of agglomerates with diameters between 5 to 20 µm and tip-splitting growth structure due to diffusion-limited aggregation on Pt-P1 and Pt-PLA. Characterization using X-ray photoemission spectroscopy (XPS) and X-ray diffraction (XRD), combined with Rietveld refinement analysis reveal a trend of downshifted d-band center, increased microstrain, and slightly increased compressive strain as the ORR activity increased among the three catalysts. The presence of more defective sites on Pt-P1 and Pt-PLA is the cause of the increased microstrain, which further leads to the downshift of the Pt d-band center and enhancement of ORR activity.
일반주제명  
Chemistry
일반주제명  
Polymer chemistry
일반주제명  
Physical chemistry
키워드  
Electrocatalysis
키워드  
Oxygen reduction reaction
키워드  
Methanol oxidation reaction
키워드  
Global energy demand
키워드  
Fuel cell cathode
기타저자  
University of Illinois at Urbana-Champaign Chemistry
기본자료저록  
Dissertations Abstracts International. 87-06B.
전자적 위치 및 접속  
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MARC

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■24510▼aUnderstanding  and  Controlling  the  Reactivity  of  Oxygen  Reduction  and  Methanol  Oxidation  Electrocatalysts
■260    ▼a[Sl]▼bUniversity  of  Illinois  at  Urbana-Champaign▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a151  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  87-06,  Section:  B.
■500    ▼aAdvisor:  Gewirth,  Andrew  A.
■5021  ▼aThesis  (Ph.D.)--University  of  Illinois  at  Urbana-Champaign,  2024.
■520    ▼aCreating  sustainable  technologies  that  can  meet  the  rising  global  energy  demand,  introduce  innovative  energy  conservation  methods,  and  minimize  the  environmental  footprint  of  energy  production  and  consumption  is  immensely  important.  In  this  context,  deep  foundational  knowledge  is  essential  for  both  the  innovation  and  development  of  these  technologies.  Particularly,  understanding  the  basics  of  the  electrocatalysis  process,  which  is  important  in  energy  conversion  devices  like  fuel  cells,  is  essential.  The  oxygen  reduction  reaction  (ORR)  at  the  fuel  cell  cathode  and  the  methanol  oxidation  reaction  (MOR)  at  the  anode  serve  as  prime  examples  of  electrocatalytic  reactions  requiring  deeper  mechanistic  insights  and  advancements  in  effective  electrocatalysts.    Chapter  1  presents  the  essential  background  pertinent  to  the  scope  of  my  research.  Chapter  2  explores  how  support  materials  influence  ORR  catalyst  performance.  In  Chapters  3  and  4,  it  is  shown  how  changes  to  electrode  morphology  significantly  affect  the  activities  of  MOR  and  ORR  catalysts,  respectively.  Taken  together,  this  research  enhances  comprehension  of  critical  energy  conversion  reactions,  proposes  methods  for  manipulating  catalyst  reactivity,  and  offers  direction  for  advancing  sustainable  technological  developments.                        Chapter  2  reports  the  oxygen  reduction  reaction  (ORR)  activity  in  acid  of  a  Fe  porphyrin  on  different  supports.  While  the  activity  is  high  (E1/2  =  0.34  V  vs.  RHE  with  n  =  3.8)  when  the  Fe  porphyrin  is  adsorbed  on  XC72  (a  graphitic  carbon),  this  activity  is  much  lower  when  the  porphyrin  is  adsorbed  on  either  MoS2  (E1/2  =  −0.15  V  vs.  RHE  with  n  =  2.2)  or  g-C3N4  (E1/2  =  −0.24  V  vs.  RHE  with  n  =  3.1).  Electron  paramagnetic  resonance  (EPR),  X-ray  absorption  fine  structure  (XAFS),  and  magnetometry  measurements  show  the  electronic  structure  around  the  Fe  center  is  the  same  for  all  three  supports.  Only  the  Fe  porphyrin  supported  on  XC72  exhibits  a  pH  XC72  relative  to  the  other  supports,  suggests  that  the  support-electrolyte  interaction  controls  the  ORR  activity.  Modification  of  MoS2  to  increase  its  hydrophilicity  results  in  a  more  active  ORR  catalyst.                              Chapter  3  studies  the  methanol  oxidation  reaction  (MOR)  on  very  rough  Pt  surfaces.  We  develop  an  electrodeposition  method  yielding  Pt  electrodes  with  high  roughness  factors  (Rf    80)  controlled  by  varying  electrodeposition  time  or  by  polymer  co-deposition.  These  rough  electrodes  exhibit  a  linear  MOR  response  at  potentials  up  to  1.4  V  vs.  RHE,  in  contrast  to  the  hysteretic  behavior  reported  in  numerous  prior  studies.  This  effect  is  found  in  both  acidic  and  basic  electrolytes.  Studies  show  that  increased  surface  roughness  increases  the  surface  concentration  of  methanol  thereby  inhibiting  the  formation  of  Pt  oxides  at  higher  potentials,  which  are  known  to  poison  subsequent  methanol  oxidation  activity.  The  potential  at  which  methanol  oxidation  poisoning  occurs  is  found  to  be  logarithmically  dependent  on  the  bulk  methanol  concentration  with  varying  slopes  in  acidic  and  basic  media.  The  origin  of  the  different  sensitivity  in  basic  relative  to  acidic  electrolyte  is  found  to  be  a  result  of  different  reaction  order  with  respect  to  methanol.  This  study  provides  methods  to  enhance  the  rate  of  organic  molecule  oxidation  at  electrode  surfaces  that  can  be  applied  to  both  electrosynthesis  and  direct  methanol  fuel  cell  applications.                        Chapter  4  investigates  a  novel  approach  to  tune  the  d-band  center  and  enhance  the  oxygen  reduction  reaction  (ORR)  activity  of  Pt  material  without  relying  on  foreign  metals  or  the  process  of  alloying/dealloying.  It  is  known  that  Pt  exhibits  suboptimal  ORR  catalytic  activity  due  to  its  strong  binding  to  oxygen,  therefore  requiring  a  downshift  in  the  d-band  center  by  approximately  0.2  eV  to  weaken  the  Pt-O  binding  energy  and  boost  ORR  kinetics.  We  found  that  the  d-band  center  can  be  tuned  by  inducing  microstrain  in  the  Pt  electrodeposit,  simply  achieved  by  introducing  polymer  into  the  electrodeposition  bath.  Pt  electrodes  (Pt-P1  and  Pt-PLA)  prepared  with  the  addition  of  Poly-N-(6-aminohexyl)acrylamide  (P1)  or  Poly-L-arginine  (PLA)  exhibit  improved  ORR  activity  compared  to  Pt  electrodeposited  without  polymer  addition  (Pt-alone)  in  both  acidic  and  basic  environments,  with  the  order  of  activity  being  Pt-P1    Pt-PLA    Pt-alone.  Pt-P1  exhibits  a  positive  shift  of  E1/2  by  90  mV  vs.  Pt-alone  in  basic  solution,  comparable  to  other  reported  high-activity  ORR  catalysts.  Scanning  electron  microscopy  (SEM)  shows  the  presence  of  agglomerates  with  diameters  between  5  to  20  µm  and  tip-splitting  growth  structure  due  to  diffusion-limited  aggregation  on  Pt-P1  and  Pt-PLA.  Characterization  using  X-ray  photoemission  spectroscopy  (XPS)  and  X-ray  diffraction  (XRD),  combined  with  Rietveld  refinement  analysis  reveal  a  trend  of  downshifted  d-band  center,  increased  microstrain,  and  slightly  increased  compressive  strain  as  the  ORR  activity  increased  among  the  three  catalysts.  The  presence  of  more  defective  sites  on  Pt-P1  and  Pt-PLA  is  the  cause  of  the  increased  microstrain,  which  further  leads  to  the  downshift  of  the  Pt  d-band  center  and  enhancement  of  ORR  activity.
■590    ▼aSchool  code:  0090.
■650  4▼aChemistry
■650  4▼aPolymer  chemistry
■650  4▼aPhysical  chemistry
■653    ▼aElectrocatalysis
■653    ▼aOxygen  reduction  reaction
■653    ▼aMethanol  oxidation  reaction
■653    ▼aGlobal  energy  demand
■653    ▼aFuel  cell  cathode
■690    ▼a0485
■690    ▼a0495
■690    ▼a0494
■71020▼aUniversity  of  Illinois  at  Urbana-Champaign▼bChemistry.
■7730  ▼tDissertations  Abstracts  International▼g87-06B.
■790    ▼a0090
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17361018▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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