Polyimide-based thermal rearranged (TR) membrane for highly efficient natural gas separation: A review
Separation and Purification Technology,
Год журнала:
2024,
Номер
355, С. 129624 - 129624
Опубликована: Сен. 13, 2024
Язык: Английский
Twenty Years of Graphene: From Pristine to Chemically Engineered Nano-Sized Flakes
Journal of the American Chemical Society,
Год журнала:
2024,
Номер
146(47), С. 32222 - 32234
Опубликована: Ноя. 13, 2024
It
is
a
celebratory
moment
for
graphene!
This
year
marks
the
20th
anniversary
of
discovery
this
amazing
material
by
Geim
and
Novoselov.
Curiously,
it
coincides
with
century
mark
graphite's
layered
structure
discovery.
Since
graphene
promise
that
its
outstanding
properties
would
change
world,
society
often
wonders
where
graphene?
In
context,
their
discoverers
said
in
2005,
"despite
reigning
optimism
about
graphene-based
electronics,
"graphenium"
microprocessors
are
unlikely
to
appear
next
20
years".
Today,
possibilities
endless!
can
be
used
photonics,
fuel
cells,
energy
storage,
artificial
intelligence,
biomedicine,
even
cultural
heritage
or
sports.
Additionally,
electronic
have
been
modified
fascinating
ways.
Bilayer
sheets
found
superconductive
when
twisted
at
"magic
angle",
leading
new
exciting
field
research
known
as
"moiré
quantum
materials"
"twistronics".
small
fragments
nanometer
sizes
undergo
confinement
effect
electrons,
affording
semiconductive
materials
applications
optoelectronics.
Organic
synthesis
allows
preparation
molecules
graphene-like
pattern
total
control
shape
size,
exhibiting
big
catalog
chiroptical
optoelectronic
properties.
Perspective
shows
some
milestones
raised
from
chemical
point
view,
including
functionalization
strategies
employed
chemically
modify
topology
pristine
well
rising
molecular
graphenes.
Язык: Английский
Competing pathways to aromaticity governed by amine dehydrogenation and metal-organic complexation in on-surface synthesis
Chemical Science,
Год журнала:
2025,
Номер
16(7), С. 3198 - 3210
Опубликована: Янв. 1, 2025
Two
distinct
reaction
pathways
are
observed
on
metal
surfaces
to
preserve
the
dimer
aromaticity.
Язык: Английский
Coronene‐Based 2D Networks by On‐Surface Skeletal Rearrangement of Sumanene Precursors
Angewandte Chemie International Edition,
Год журнала:
2024,
Номер
unknown
Опубликована: Авг. 28, 2024
The
design
of
novel
low-dimensional
carbon
materials
is
at
the
forefront
modern
chemistry.
Recently,
on-surface
covalent
synthesis
has
emerged
as
a
powerful
strategy
to
synthesize
previously
precluded
compounds
and
polymers.
Here,
we
report
scanning
probe
microscopy
study,
complemented
by
theoretical
calculations,
on
sequential
skeletal
rearrangement
sumanene-based
precursors
into
coronene-based
organometallic
network
stepwise
intra-
inter-molecular
reactions
Au(111).
Interestingly,
upon
higher
annealing,
formed
networks
evolve
two-dimensional
covalently
linked
patches
through
intermolecular
homocoupling
reactions.
A
new
reaction
mechanism
proposed
based
role
C-Au-C
motifs
promote
two
carbon-carbon
couplings
form
cyclobutadiene
bridges.
Our
results
pave
avenues
for
conversion
molecular
surfaces,
affording
unexplored
materials.
Язык: Английский
Coronene‐Based 2D Networks by On‐Surface Skeletal Rearrangement of Sumanene Precursors
Angewandte Chemie,
Год журнала:
2024,
Номер
unknown
Опубликована: Авг. 28, 2024
Abstract
The
design
of
novel
low‐dimensional
carbon
materials
is
at
the
forefront
modern
chemistry.
Recently,
on‐surface
covalent
synthesis
has
emerged
as
a
powerful
strategy
to
synthesize
previously
precluded
compounds
and
polymers.
Here,
we
report
scanning
probe
microscopy
study,
complemented
by
theoretical
calculations,
on
sequential
skeletal
rearrangement
sumanene‐based
precursors
into
coronene‐based
organometallic
network
stepwise
intra‐
inter‐molecular
reactions
Au(111).
Interestingly,
upon
higher
annealing,
formed
networks
evolve
two‐dimensional
covalently
linked
patches
through
intermolecular
homocoupling
reactions.
A
new
reaction
mechanism
proposed
based
role
C−Au−C
motifs
promote
two
carbon‐carbon
couplings
form
cyclobutadiene
bridges.
Our
results
pave
avenues
for
conversion
molecular
surfaces,
affording
unexplored
materials.
Язык: Английский