<?xml version="1.0" encoding="UTF-8"?>
<feed xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns="http://www.w3.org/2005/Atom">
<title>Ph.D. Chemistry</title>
<link href="http://hdl.handle.net/10464/2239" rel="alternate"/>
<subtitle/>
<id>http://hdl.handle.net/10464/2239</id>
<updated>2013-06-19T09:12:51Z</updated>
<dc:date>2013-06-19T09:12:51Z</dc:date>
<entry>
<title>Half-sandwich silane complexes of ruthenium and iron : synthesis, structure and application to catalysis</title>
<link href="http://hdl.handle.net/10464/3971" rel="alternate"/>
<author>
<name>Gutsulyak, Dmitry V.</name>
</author>
<id>http://hdl.handle.net/10464/3971</id>
<updated>2012-11-12T16:12:08Z</updated>
<published>2012-04-04T00:00:00Z</published>
<summary type="text">Half-sandwich silane complexes of ruthenium and iron : synthesis, structure and application to catalysis
Gutsulyak, Dmitry V.
The present thesis describes syntheses, structural studies, and catalytic reactivity of&#13;
new non-classical silane complexes of ruthenium and iron. The ruthenium complexes&#13;
CpRu(PPri3)CI(T]2-HSiR3) (1) (SiR3 = SiCh (a), SiClzMe (b), SiCIMe2 (c), SiH2Ph (d),&#13;
SiMe2Ph (e» were prepared by reactions of the new unsaturated complex&#13;
CpRu(PPri3)CI with silanes. According to NMR studies and X-ray analyses, the&#13;
complexes la-c exhibit unusual simultaneous Si··· H and Si··· CI-Ru interactions. The&#13;
complex CpRu(PPri3)CI was also used for the preparation of the first examples of late&#13;
transition metal agostic silylamido complexes CpRu(PPri3)(N(T]2-HSiMe2)R) (2) (R=&#13;
Ar or But), which were characterized by NMR spectroscopy. The iron complexes&#13;
CpFe(PMePri2)H2(SiR3) (3) (SiR3 = SiCh (a), SiClzMe (b), SiCIMe2 (c), SiH2Ph (d),&#13;
SiMe2Ph (e» were synthesized by the reaction of the new borohydride iron complex&#13;
CpFe(PMePri2)(B~) with silanes in the presence NEt3. The complexes 3 exhibit&#13;
unprecedented two simultaneous and equivalent Si··· H interactions, which was&#13;
confirmed by X-ray analyses and DFT calculations. A series of cationic ruthenium&#13;
complexes [CpRu(PR3)(CH3CN)(112-HSiR'3)]BAF (PR3 = PPri&#13;
3 (4), PPh3 (5); SiR'3 =&#13;
SiCh (a), SiClzMe (b), SiClMe2 (c), SiH2Ph (d), SiMe2Ph (e» was obtained by&#13;
substitution of one of the labile acetonitrile ligands in [CpRu(PR3)(CH3CNh]BAF&#13;
with sHanes. Analogous complexes [TpRu(PR3)(CH3CN)(T]2 -HSiR' 3)]BAF (5) were&#13;
obtained by the reaction of TpRu(PR3)(CH3CN)CI with LiBAF in the presence of&#13;
silanes. The complexes 4-5 were characterized by NMR spectroscopy, and the&#13;
observed coupling constants J(Si-H) allowed us to estimate the extent of Si-H bond&#13;
activation in these compounds.&#13;
The catalytic activity in hydrosilylation reactions of all of the above complexes was&#13;
examined. The most promising results were achieved with the cationic ruthenium precatalyst [CpRu(PPri3)(CH3CN)2t (6). Complex 6 shows good to excellent catalytic&#13;
activity in the hydrosilylation of carbonyls, dehydrogenative coupling of silanes with&#13;
alcohols, amines, acids, and reduction of acid chlorides. We also discovered very&#13;
selective reduction of nitriles and pyridines into the corresponding N-silyl imines and&#13;
l,4-dihydropyridines, respectively, at room temperature with the possibility of&#13;
catalyst recycling. These chemoselective catalytic methods have no analogues in the&#13;
literature. The reactions were proposed to proceed via an ionic mechanism with&#13;
intermediate formation of the silane a-complexes 4.
</summary>
<dc:date>2012-04-04T00:00:00Z</dc:date>
</entry>
<entry>
<title>Hydrosilylation and hydroboration catalyzed by imido-hydride complexes of molybdenum (IV)</title>
<link href="http://hdl.handle.net/10464/3970" rel="alternate"/>
<author>
<name>Shirobokov, Oleg G.</name>
</author>
<id>http://hdl.handle.net/10464/3970</id>
<updated>2012-11-12T16:12:37Z</updated>
<published>2012-04-04T00:00:00Z</published>
<summary type="text">Hydrosilylation and hydroboration catalyzed by imido-hydride complexes of molybdenum (IV)
Shirobokov, Oleg G.
This thesis describes the synthesis, structural studies, stoichiometric and catalytic&#13;
reactivity of novel Mo(IV) imido hydride complexes (Cp)(ArN)Mo(H)(PMe3) (1) and&#13;
(Tp )(ArN)Mo(H)(PMe3) (2). Both 1 and 2 catalyze hydrosilylation of a variety of&#13;
carbonyls. Detailed kinetic and DFT studies found that 1 reacts by an unexpected&#13;
associative mechanism, which does not involve Si-H addition either to the imido group or&#13;
the metal. Despite 1 being a d2 complex, its reaction with PhSiH3 proceeds via a a-bond&#13;
metathesis mechanism giving the silyl derivative (Cp )(ArN)Mo(SiH2Ph)(PMe3). In the&#13;
presence of BPh3 reaction of 1 with PhSiH3 results in formation of&#13;
(Cp)(ArN)Mo(SiH2Ph)(H)2 and (Cp)(ArN)Mo(SiH2Ph)2(H), the first examples ofMo(VI)&#13;
silyl hydrides.&#13;
AI: 1 : 1 reaction between 2, PhSiD3 and carbonyl substrate established that&#13;
hydrosilylation is not accompanied by deuterium incorporation into the hydride position&#13;
of the catalyst, thus ruling out the conventional mechanism based on carbonyl insertion&#13;
carbonyl. As 2 is nomeactive to both the silane and ketone, the only mechanistic&#13;
alternative we are left with is that the metal center activates the carbonyl as a Lewis acid.&#13;
The analogous nonhydride mechanism was observed for the catalysis by&#13;
(ArN)Mo(H)(CI)(PMe3), (Ph3P)2(I)(O)Re(H)(OSiMe2Ph) and (PPh3CuH)6.&#13;
Complex 2 also catalyzes hydroboration of carbonyls and nitriles. We report the first&#13;
case of metal-catalyzed hydroboration of nitriles as well as hydroboration of carbonyls at&#13;
very mild conditions. Conversion of carbonyl functions can be performed with high&#13;
selectivities in the presence of nitrile groups. This thesis also reports the first case of the HlH exchange between H2 and Si-H of&#13;
silanes mediated by Lewis acids such as Mo(IV) , Re(V) , Cu(I) , Zn(II) complexes,&#13;
B(C6Fs)3 and BPh3.
</summary>
<dc:date>2012-04-04T00:00:00Z</dc:date>
</entry>
<entry>
<title>Stereoselective synthesis of substituted hexahydro-3a,4a-diazacyclopentaphenanthren-4-ones and aminoferrocenes</title>
<link href="http://hdl.handle.net/10464/3383" rel="alternate"/>
<author>
<name>Zaifman, Joshua David</name>
</author>
<id>http://hdl.handle.net/10464/3383</id>
<updated>2012-11-12T16:09:24Z</updated>
<published>2011-05-17T00:00:00Z</published>
<summary type="text">Stereoselective synthesis of substituted hexahydro-3a,4a-diazacyclopentaphenanthren-4-ones and aminoferrocenes
Zaifman, Joshua David
This  thesis  explored  the  development  of   several  methodologies  for  the &#13;
stereoselective  construction  of  ligand  frameworks  and  some  of  their  applications.  The &#13;
first  segment  concerns  the  application  of   an  enantioselective  lithiation  at  an  Sp3_ &#13;
hybridized position adjacent to nitrogen by means of  the widely used and typically highly &#13;
effective enantioselective lithiation with  ( -)-sparteine. This investigation was intended to &#13;
develop a method to  install chirality into a system that would be  converted into a family &#13;
of   diaminoylidenes  for  use  as  phosphine  mimics  in  transition  metal  catalysis  or  as &#13;
nucleophilic  reagents.  Molecular modeling of  the  system  revealed  some  key interactions &#13;
between the  substrate  and  (-)-sparteine that  provided  general  insight into  the  diamine's &#13;
mode of  action and should lend some predictive value to its  future applications. &#13;
The  second  portion  focuses  on  the  development  of   methods  to  access  1,2-&#13;
disubstituted aminoferrocenes,  an underexplored  class  of  metallocenes possessing planar &#13;
chirality.  Two  routes  were  examined  involving  a  diastereoselective  and  an &#13;
enantioselective  pathway,  where  the  latter  method  made  use  of  the  first  BF3-mediated &#13;
lithiation-substitution  to  install  planar  chirality.  Key  derivatives  such  as  1,2-&#13;
aminophosphines,  made  readily  accessible  by the  new  route,  were  evaluated  as  ligands &#13;
for Pd(II), Pt(II) and Ir(I).  These complexes show activity in a number of  transformations &#13;
with  both  achiral  and  prochiral  substrates.  Optimization  experiments  were  conducted to &#13;
prepare enantiomerically enriched  2-substituted-I-aminoferrocenes by direct asymmetric &#13;
lithiation of  BF3-coordinated tertiary aminoferrocenes. A predictive computational model &#13;
describing  the  transition  state  of  this  reaction  was  developed  in  collaboration  with &#13;
Professor  Travis  Dudding's  group  (Department  of  Chemistry,  Brock  University).  The predicted  stereochemistry of  the  process was  confirmed by single-crystal X-ray  analysis &#13;
of  a 2-phosphino-l-dimethylaminoferrocene derivative. Enantiomerically pure samples of  &#13;
the  aminophosphine  ligands  derived  from  this  new  process  have  given  promising &#13;
preliminary results in the enantioselective hydrogenation of  prochiral alkenes and warrant &#13;
further stUdy in metal-mediated catalysis.
</summary>
<dc:date>2011-05-17T00:00:00Z</dc:date>
</entry>
<entry>
<title>Molybdenum (IV) imido silylamido and hydride complexes : stoichiometric and catalytic reactivity, mechanistic aspects of hydrosilation reactions</title>
<link href="http://hdl.handle.net/10464/3361" rel="alternate"/>
<author>
<name>Khalimon, Andrey Y.</name>
</author>
<id>http://hdl.handle.net/10464/3361</id>
<updated>2012-11-12T16:09:34Z</updated>
<published>2011-05-17T00:00:00Z</published>
<summary type="text">Molybdenum (IV) imido silylamido and hydride complexes : stoichiometric and catalytic reactivity, mechanistic aspects of hydrosilation reactions
Khalimon, Andrey Y.
This thesis describes the  synthesis,  structural studies,  and stoichiometric and  catalytic &#13;
reactivity  of  novel  Mo(IV)  imido  silylamide  (R'N)Mo(R2)(173_RIN-SiR32-H)(PMe3)n  (1: &#13;
Rl  = tBu,  Ar',  Ar;  R2  = Cl;  R32  = Me2,  MePh, MeCl,  Ph2, HPh;  n =  2;  2:  R'  =  Ar,  R2  = &#13;
SiH2Ph,  n =  1)  and hydride complexes (ArN)Mo(H)(R)(PMe3)3  (R = Cl (3),  SiH2Ph (4».  &#13;
Compounds of  type 1 were generated from (R'N)Mo(PMe3)n(L)  (5:  R'  = tBu, Ar', Ar; L = &#13;
PMe3,  r/- C2H4)  and chlorohydrosilanes  by the imido/silane coupling approach,  recently &#13;
discovered  in  our  group.  The  mechanism  of   the  reaction  of   5  with  HSiCh  to  give &#13;
(ArN)MoClz(PMe3)3  (8)  was  studied  by  VT  NMR,  which  revealed the  intermediacy  of &#13;
(ArN)MCh(172 &#13;
-ArN=SiHCl)(PMe3)z  (9).  The   imido/silyl  coupling  methodology  was &#13;
transferred to  the  reactions  of  5  with  chlorine-free  hydrosilanes.  This  approach  allowed &#13;
for  the  isolation  of   a  novel  ,B-agostic  compound  (ArN)Mo(SiHzPh)(173 &#13;
-NAr-SiHPhH)(PMe3)  (10).  The  latter was  found to  be active in a variety of  hydrosilation processes, &#13;
including the rare monoaddition of  PhSiH3 to benzonitrile. Stoichiometric reactions of  11 &#13;
with  unsaturated  compounds  appear  to  proceed  via  the  silanimine  intermediate &#13;
(ArN)M(17z-ArN=SiHPh)(PMe3)  (12)  and,  in  the  case  of   olefins  and nitriles,  give &#13;
products of  Si-C coupling, such as  (ArN)Mo(R)(173 &#13;
-NAr-SiHPh-CH=CHR')(PMe3) (13:  R &#13;
=  Et,  R'  =  H;  14:  R =  H,  R'  =  Ph)  and  (ArN)Mo(172-NAr-SiHPh-CHR=N)(PMe3)  (15). &#13;
Compound  13  was  also  subjected  to  catalysis  showing  much  improved  activity  in  the &#13;
hydrosilation of  carbonyls and alkenes. &#13;
Hydride complexes 3 and 4 were prepared starting from (ArN)MoCh(PMe3)3  (8). Both &#13;
hydride  species  catalyze  a  diversity  of  hydrosilation  processes  that  proceed  via  initial &#13;
substrate  activation  but  not  silane  addition.  The  proposed  mechanism  is  supported  by stoichiometric  reactions  of  3  and  4,  kinetic  NMR  studies,  and  DFf  calculations  for  the &#13;
hydrosilation of benzaldehyde and acetone mediated by 4.
</summary>
<dc:date>2011-05-17T00:00:00Z</dc:date>
</entry>
</feed>
