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Computational and Experimental Studies in Selective Organocatalysis- [electronic resource]
Computational and Experimental Studies in Selective Organocatalysis - [electronic resource...
Computational and Experimental Studies in Selective Organocatalysis- [electronic resource]

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자료유형  
 학위논문파일 국외
최종처리일시  
20240214101224
ISBN  
9798380848060
DDC  
547
저자명  
Wagen, Corin.
서명/저자  
Computational and Experimental Studies in Selective Organocatalysis - [electronic resource]
발행사항  
[S.l.]: : Harvard University., 2023
발행사항  
Ann Arbor : : ProQuest Dissertations & Theses,, 2023
형태사항  
1 online resource(354 p.)
주기사항  
Source: Dissertations Abstracts International, Volume: 85-05, Section: B.
주기사항  
Advisor: Jacobsen, Eric.
학위논문주기  
Thesis (Ph.D.)--Harvard University, 2023.
사용제한주기  
This item must not be sold to any third party vendors.
초록/해제  
요약Chemical synthesis has transformed the ability of scientists and engineers to interact with the molecular world. Yet despite almost two centuries of considerable effort, small-molecule synthesis remains a challenging task. Hundreds of new reactions are discovered every year, but few possess the requisite selectivity and generality needed to be useful for routine synthesis, and elucidation of their mechanism and underlying catalytic principles is rarely conducted. In this work, we describe a variety of efforts at the interface of organic, computational, and analytical chemistry which seek to address the linked problems of discovering selective organocatalysts and understanding the mechanism by which they operate.In Chapter 1, we report the development of a new analytical method that combines chiral stationary phase supercritical fluid chromatography with mass spectrometry-based detection to enable enantiodetermination of pooled crude reaction mixtures, greatly increasing analytical throughput. This advance allows us to perform multi-substrate screening to discover catalysts possessing good substrate scope, which we demonstrate in the optimization of a Bronsted acid catalyst for the enantioselective Pictet-Spengler reaction.In Chapter 2, we disclose the results of a mechanistic study aimed at understanding a hydrogen chloride/hydrogen-bond donor co-catalyzed Prins cyclization of alkenyl aldehydes which exhibited dramatic rate acceleration compared to the background reaction. Our studies reveal that the catalyst reacts with hydrogen chloride to form a new chiral acid in situ with a higher pKa than hydrogen chloride, which nevertheless reacts faster owing to favorable catalyst-controlled positioning of the chloride anion to electrostatically stabilize the major transition state.In Chapter 3, we report a computational study of our group's regio- and stereoselective glycosylation of minimally protected glycosyl acceptors. The computational model described- the first of hydrogen-bond-donor-catalyzed glycosylation of glycosyl phosphate donors-contains features of the transition state previously hypothesized on the basis of experimental results, and lends support to the proposed "4H" binding mechanism.In Chapter 4, we describe the development of an enantioselective protio-semipinacol reaction of unactivated vinylic cyclopropanols. Motivated by the question of how high enantioselectivity can be achieved in a low-barrier 1,2-rearrangement, we conduct an experimental and computational mechanistic investigation and come to the surprising conclusion that protonation to form a formally achiral carbocation in fact exerts stereocontrol over the subsequent rearrangement step: the rearrangement is so rapid that the carbocation is locked in a given chiral conformation, rendering the rearrangement effectively stereospecific. Finally, in chapter 5 we detail a spectroscopic and computational study of solutions of hydrogen chloride in diethyl ether, aimed at assigning the solution structure of hydrogen chloride. In situ IR spectroscopy, combined with density-functional theory and molecular dynamics, provides evidence for the existence of oxonium ions formed from complete proton transfer to diethyl ether. This observation explains the often-inhibitory effect of diethyl ether on hydrogen chloride-catalyzed reactions and has intriguing implications for catalyst design.
일반주제명  
Organic chemistry.
일반주제명  
Computational chemistry.
일반주제명  
Analytical chemistry.
키워드  
Organocatalysis
키워드  
Chemical synthesis
키워드  
Hydrogen chloride
키워드  
Mass spectrometry
키워드  
Catalysts
기타저자  
Harvard University Chemistry and Chemical Biology
기본자료저록  
Dissertations Abstracts International. 85-05B.
기본자료저록  
Dissertation Abstract International
전자적 위치 및 접속  
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■020    ▼a9798380848060
■035    ▼a(MiAaPQ)AAI30526688
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a547
■1001  ▼aWagen,  Corin.▼0(orcid)0000-0003-3315-3524
■24510▼aComputational  and  Experimental  Studies  in  Selective  Organocatalysis▼h[electronic  resource]
■260    ▼a[S.l.]:▼bHarvard  University.  ▼c2023
■260  1▼aAnn  Arbor  :▼bProQuest  Dissertations  &  Theses,  ▼c2023
■300    ▼a1  online  resource(354  p.)
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-05,  Section:  B.
■500    ▼aAdvisor:  Jacobsen,  Eric.
■5021  ▼aThesis  (Ph.D.)--Harvard  University,  2023.
■506    ▼aThis  item  must  not  be  sold  to  any  third  party  vendors.
■520    ▼aChemical  synthesis  has  transformed  the  ability  of  scientists  and  engineers  to  interact  with  the  molecular  world.  Yet  despite  almost  two  centuries  of  considerable  effort,  small-molecule  synthesis  remains  a  challenging  task.  Hundreds  of  new  reactions  are  discovered  every  year,  but  few  possess  the  requisite  selectivity  and  generality  needed  to  be  useful  for  routine  synthesis,  and  elucidation  of  their  mechanism  and  underlying  catalytic  principles  is  rarely  conducted.  In  this  work,  we  describe  a  variety  of  efforts  at  the  interface  of  organic,  computational,  and  analytical  chemistry  which  seek  to  address  the  linked  problems  of  discovering  selective  organocatalysts  and  understanding  the  mechanism  by  which  they  operate.In  Chapter  1,  we  report  the  development  of  a  new  analytical  method  that  combines  chiral  stationary  phase  supercritical  fluid  chromatography  with  mass  spectrometry-based  detection  to  enable  enantiodetermination  of  pooled  crude  reaction  mixtures,  greatly  increasing  analytical  throughput.  This  advance  allows  us  to  perform  multi-substrate  screening  to  discover  catalysts  possessing  good  substrate  scope,  which  we  demonstrate  in  the  optimization  of  a  Bronsted  acid  catalyst  for  the  enantioselective  Pictet-Spengler  reaction.In  Chapter  2,  we  disclose  the  results  of  a  mechanistic  study  aimed  at  understanding  a  hydrogen  chloride/hydrogen-bond  donor  co-catalyzed  Prins  cyclization  of  alkenyl  aldehydes  which  exhibited  dramatic  rate  acceleration  compared  to  the  background  reaction.  Our  studies  reveal  that the  catalyst  reacts  with  hydrogen  chloride  to  form  a  new  chiral  acid  in  situ  with  a  higher  pKa  than  hydrogen  chloride,  which  nevertheless  reacts  faster  owing  to  favorable  catalyst-controlled  positioning  of  the  chloride  anion  to  electrostatically  stabilize  the  major  transition  state.In  Chapter  3,  we  report  a  computational  study  of  our  group's  regio-  and  stereoselective  glycosylation  of  minimally  protected  glycosyl  acceptors.  The  computational  model  described-  the  first  of  hydrogen-bond-donor-catalyzed  glycosylation  of  glycosyl  phosphate  donors-contains  features  of  the  transition  state  previously  hypothesized  on  the  basis  of  experimental  results,  and  lends  support  to  the  proposed  "4H"  binding  mechanism.In  Chapter  4,  we  describe  the  development  of  an  enantioselective  protio-semipinacol  reaction  of  unactivated  vinylic  cyclopropanols.  Motivated  by  the  question  of  how  high  enantioselectivity  can  be  achieved  in  a  low-barrier  1,2-rearrangement,  we  conduct  an  experimental  and  computational  mechanistic  investigation  and  come  to  the  surprising  conclusion  that  protonation  to  form  a  formally  achiral  carbocation  in  fact  exerts  stereocontrol  over  the  subsequent  rearrangement  step:  the  rearrangement  is  so  rapid  that  the  carbocation  is  locked  in  a  given  chiral  conformation,  rendering  the  rearrangement  effectively  stereospecific. Finally,  in  chapter  5  we  detail  a  spectroscopic  and  computational  study  of  solutions  of  hydrogen  chloride  in  diethyl  ether,  aimed  at  assigning  the  solution  structure  of  hydrogen  chloride.  In  situ  IR  spectroscopy,  combined  with  density-functional  theory  and  molecular  dynamics,  provides  evidence  for  the  existence  of  oxonium  ions  formed  from  complete  proton  transfer  to  diethyl  ether.  This  observation  explains  the  often-inhibitory  effect  of  diethyl  ether  on  hydrogen  chloride-catalyzed  reactions  and  has  intriguing  implications  for  catalyst  design.
■590    ▼aSchool  code:  0084.
■650  4▼aOrganic  chemistry.
■650  4▼aComputational  chemistry.
■650  4▼aAnalytical  chemistry.
■653    ▼aOrganocatalysis
■653    ▼aChemical  synthesis
■653    ▼aHydrogen  chloride
■653    ▼aMass  spectrometry
■653    ▼aCatalysts
■690    ▼a0490
■690    ▼a0219
■690    ▼a0486
■71020▼aHarvard  University▼bChemistry  and  Chemical  Biology.
■7730  ▼tDissertations  Abstracts  International▼g85-05B.
■773    ▼tDissertation  Abstract  International
■790    ▼a0084
■791    ▼aPh.D.
■792    ▼a2023
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T16933255▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.
■980    ▼a202402▼f2024

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