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Document Description
Title
Computational
studies
of
reactions
involving
1st
,
2nd
, and
3rd
row
elements
and the
performance
of
theory
Author
Islam
,
Mohammad
Shahidul.
Description
Thesis
(Ph.D.)--Memorial
University
of
Newfoundland
,
2008.
Chemistry
Date
2007
Pagination
xxxiv, 326 leaves : ill. (some col.)
Subject
(Memo)
Degree
Ph.D.
Degree Grantor
Memorial University of Newfoundland. Dept. of Chemistry
Discipline
Chemistry
Language
Eng
Notes
Includes
bibliographical
references
Abstract
This
thesis
has
involved
detailed
computational
studies
of the
mechanisms
of
several
chemical
reactions
involving
first
,
second
and
third
row
elements.
Geometries
of the
relevant
molecules
were
optimized
at the
HF
,
MP2
and
B3LYP
levels
using
the
6-31G(d)
,
6-31+G(d)
,
6-31G(d
,
p)
and
aug-cc-pVDZ
basis
sets.
Gaussian-n
theories
such
as
G3MP2
,
G3MP2B3
and
G3B3
were also
used
, as they are
expected
to
adequately
reproduce
experimental
data.
The
complete
reaction
pathways
for
all
the
mechanisms
have been
verified
using
intrinsic
reaction
coordinate
(IRC)
analysis.
--
The
reactions
of
SiH3
X
(X
=
H
,
Cl
, Br,
I)
with
HCN
were
investigated
and
three
different
mechanisms
were
obtained.
One
of the
mechanisms
involves
HX
elimination
by a
one-step
pathway
producing
SiH3
CN.
The
second
mechanism
consists
of
H2
elimination
,
producing
SiH2
XCN
via
a
one-step
pathway
or
three
multiple-step
pathways.
The
third
mechanism
involves
dissociation
of
SiH3
X
to
various
products
,
which
can
then
react
with
HCN.
--
We
have
found
for the
first
time
that the
mechanism
of the
addition
of
bromine
to
alkenes
involves
reaction
with
two
bromine
molecules
in
non-polar
aprotic
solvents
,
while
in
polar
protic
solvents
the
mechanism
involves
reaction
with a
single
bromine
molecule
mediated
by a
solvent
molecule.
For
both
cases
, the
calculated
activation
energies
were
found
to be in
excellent
agreement
with
experiment.
We
proposed
a
kinetic
expression
that
accounts
for the
difference
between
bromination
of
alkenes
in
protic
and
aprotic
solvents.
We
also
found
that
bromination
of
adamantylideneadamantane
should
occur
spontaneously
in the
gas
phase
as
well
as in
some
solvents
with
no
reaction
barrier.
--
We
have
found
that for
third
row
elements
the
BC6-31G
basis
set
which
is
widely
used
as a
6-31G
basis
set
in
most
of the
commercial
quantum
chemistry
packages
does
not
meet
the
definition
of the
standard
6-31G
basis
set.
A
comparative
study
of the
performance
of the
standard
6-31G
and
Binning-Curtiss
(BC6-31G)
basis
sets
for
third
row
elements
,
Ga
,
Ge
,
As
,
Se
, and Br, was
carried
out.
Frequencies
and
thermodynamic
values
obtained
by
using
the
standard
6-31G
basis
set
are
better
than those
obtained
using
the
BC6-31G
basis
set
when
compared
to
experiment
and
G3MF2.
We
recommend
that the
standard
6-31G
basis
set
be
used
for
calculations
involving
3
rd
row
elements.
--
The
kinetic
isotope
effects
(KIEs)
, a
major
experimental
tool
to
determine
the
transition
state
(TS)
structure
, have been
used
to
characterize
the
transition
state
structure
of
SN
2
reactions.
Chlorine
leaving
group
k
35
/k37
,
nucleophile
carbon
k11
/k
14
and
secondary
α-deuterium
[(kH
/kD
)
α
)]
kinetic
isotope
effects
(KIEs)
have been
calculated
for the
SN
2
reactions
between
para
-substituted
benzyl
chlorides
and
cyanide
ion
and
compared
to the
experimental
results
to
determine
whether
these
isotope
effects
can
be
used
to
determine
the
substituent
effect
on the
structure
of the
transition
state.
It
was
found
that
both
leaving
group
and
nucleophile
KIE
vary
with the
TS
structure.
However
, a
correct
and
measurable
substituent
effect
on
leaving
group
KIEs
will
only
be
found
for a
very
reactant-like
or for a
very
product-like
TS.
The
substituent
effect
on
nucleophile
KIEs
will
only
be
found
when
the
Nu-C
αbond
formation
in the
TS
is
well
advanced
i.e.
, in a
product-like
SN
2
TS.
--
Nucleophile
carbon
k11
/k14
and
secondary
a-deuterium
[(kH
/kD
)α
)]
kinetic
isotope
effects
(KIEs)
were also
calculated
for the
SN
2
reactions
between
tetrabutylammonium
cyanide
and
ethyl
iodide
,
bromide
,
chloride
and
tosylate
and
compared
to the
experimental
results
to
determine
whether
these
isotope
effects
can
be
used
to
determine
the
structure
of the
SN
2
transition
states.
The
results
showed
that the
nucleophile
carbon
k11
/k
14
KIEs
can
be
used
to
determine
the
transition
state
structure
in
different
reactions
and the
results
suggest
that
changing
to a
poorer
leaving
group
leads
to a
tighter
transition
state.
The
magnitude
of the
experimental
secondary
α-deuterium
KIE
is
related
to the
nucleophile
--
leaving
group
distance
in the
S
N
2
transition
state
(RTS
)
for
reactions
with a
halogen
leaving
group.
However
, the
calculated
and
experimental
α-deuterium
KIEs
show
opposite
trends
with
leaving
group
ability.
--
In
conclusion
, the
results
of
my
doctoral
research
have
greatly
increased
our
knowledge
of the
mechanisms
,
transition
state
structures
and the
thermodynamic
properties
of
reactions
involving
1st
,
2
nd
and
3rd
row
elements.
Type
Text
Format
Image/jpeg;
Application/pdf
Source
Paper copy kept in the Centre for Newfoundland Studies, Memorial University Libraries
Local Identifier
a2562093
Rights
The author retains copyright ownership and moral rights in this thesis. Neither the thesis nor substantial extracts from it may be printed or otherwise reproduced without the author's permission.
Collection
Electronic
Theses
and
Dissertations
Scanning Status
Incomplete
PDF File
(32.65
MB)
--
http://collections.mun.ca/PDFs/theses/Islam_MohammadShahidul.pdf
CONTENTdm file name
111325.cpd