Journal of Materials Chemistry A,
Год журнала:
2024,
Номер
unknown
Опубликована: Янв. 1, 2024
This
work
reports
a
ternary
Ni
0.4
Fe
0.3
Co
-glycerolate
as
an
OER
electrocatalyst
using
one-step
solvothermal
strategy.
optimized
composition
achieved
overpotential
of
277
mV
at
current
density
10
mA
cm
−2
in
1
M
KOH.
Abstract
Modulating
electronic
structure
to
balance
the
requirement
of
both
hydrogen
evolution
reaction
(HER)
and
oxygen
(OER)
is
crucial
for
developing
bifunctional
catalysts.
Herein,
phase
transformation
engineering
utilized
separately
regulate
catalyst
structure,
designed
NiFe@Ni/Fe‐MnOOH
schottky
heterojunction
exhibits
remarkable
electrocatalytic
activity
with
low
overpotentials
19
230
mV
at
10
mA
cm
−2
HER
OER
in
1M
KOH,
respectively.
Meanwhile,
an
anion‐exchange
membrane
water
electrolyzer
employing
as
electrodes
shows
voltages
1.487/1.953
V
10/1000
,
operating
over
200
h
1000
.
Combining
theoretical
calculations
experiments
reveal
that
can
differentially
active
phases
HER/OER.
In
HER,
Ni/Fe‐MnOOH
metallic
NiFe
act
*OH
*H
acceptors
respectively
accelerates
dissociation
subsequent
Heyrovsky/Tafel
step.
While
OER,
significant
Jahn‐Teller
effect
Mn
3+
induces
surface
reconstruction
from
Ni/Fe‐MnO
2
The
formative
high
value
4+
modify
M‐O
hybridization
activate
lattice
mechanism,
which
pivotal
breaking
restriction
volcanic
relationship
reducing
overpotential.
These
findings
provide
valuable
design
guidelines
high‐performance
multi‐functional
electrocatalysts
via
engineering.
Nano-Micro Letters,
Год журнала:
2025,
Номер
17(1)
Опубликована: Янв. 22, 2025
Abstract
Seawater
electrolysis
offers
a
promising
pathway
to
generate
green
hydrogen,
which
is
crucial
for
the
net-zero
emission
targets.
Indirect
seawater
severely
limited
by
high
energy
demands
and
system
complexity,
while
direct
bypasses
pre-treatment,
offering
simpler
more
cost-effective
solution.
However,
chlorine
evolution
reaction
impurities
in
lead
severe
corrosion
hinder
electrolysis’s
efficiency.
Herein,
we
review
recent
advances
rational
design
of
chlorine-suppressive
catalysts
integrated
systems
architectures
chloride-induced
corrosion,
with
simultaneous
enhancement
Faradaic
efficiency
reduction
cost.
Furthermore,
directions
are
proposed
durable
efficient
systems.
This
provides
perspectives
toward
sustainable
conversion
environmental
protection.
Catalysts,
Год журнала:
2025,
Номер
15(3), С. 293 - 293
Опубликована: Март 20, 2025
Electrochemical
water
splitting
is
a
feasible
and
effective
method
for
attaining
hydrogen,
offering
mechanism
renewable
energy
solutions
to
combat
the
world’s
crises
due
scarcity
of
fossil
fuels.
Evidently,
viability
stability
electrocatalysts
are
fundamental
electrochemical
water-splitting
process.
However,
net
efficiency
this
process
noticeably
hindered
by
kinetic
drawbacks
related
OER.
Hence,
NiFe
LDH
has
been
widely
used
as
highly
efficient
OER
HER
catalyst
material
its
unique
nanostructure,
tunable
composition,
favorable
electronic
structure.
This
review
offers
systematic
analysis
latest
progress
in
fabrication
functional
catalysts
associated
strategies,
structure
optimizations,
performance
improvements.
Special
emphasis
given
understanding
role
nanostructure
engineering
increasing
active
site
accessibility,
enhancing
effectiveness
subsequent
electron
transfer,
boosting
intrinsic
catalytic
activity
Moreover,
we
discuss
influence
doping,
defects,
formation
heterostructures
with
other
materials
on
activities
LDHs.
Additional
accounts
basic
structures
provided,
along
an
enhanced
theoretical
based
DFT
studies
LDH.
limitations
potential
developments
work
focus
need
existing
synthesis
approaches,
catalysts,
their
insertion
into
working
processes.
comprehensive
current
state
research
use
foster
improved
development
sustainable
hydrogen
sources
future.