The
development
of
advanced
electrolysis
technologies
such
as
anion
exchange
membrane
water
electrolyzer
(AEMWE)
is
central
to
the
vision
a
sustainable
energy
future.
Key
realization
AEMWE
technology
lies
in
exploration
low-cost
and
high-efficient
catalysts
for
facilitating
anodic
oxygen
evolution
reaction
(OER).
Despite
tremendous
efforts
fundamental
research,
most
today's
OER
works
are
conducted
under
room
temperature,
which
deviates
significantly
with
AEMWE's
operating
temperature
(50-80
°C).
To
bridge
this
gap,
it
highly
desirable
obtain
insights
into
catalytic
behavior
at
elevated
temperatures.
Herein,
using
well-known
perovskite
catalyst
Ba
Energy & environment materials,
Год журнала:
2022,
Номер
6(5)
Опубликована: Май 28, 2022
Electrochemical
water
splitting
represents
one
of
the
most
promising
technologies
to
produce
green
hydrogen,
which
can
help
realize
goal
achieving
carbon
neutrality.
While
substantial
efforts
on
a
laboratory
scale
have
been
made
for
understanding
fundamental
catalysis
and
developing
high‐performance
electrocatalysts
two
half‐reactions
involved
in
electrocatalysis,
much
less
attention
has
paid
doing
relevant
research
larger
scale.
For
example,
few
such
researches
done
an
industrial
Herein,
we
review
very
recent
endeavors
bridge
gaps
between
applications
electrolysis.
We
begin
by
introducing
fundamentals
electrochemical
then
present
comparisons
testing
protocol,
figure
merit,
catalyst
interest,
manufacturing
cost
industry‐based
water‐electrolysis
research.
Special
is
tracking
surface
reconstruction
process
identifying
real
catalytic
species
under
different
conditions,
highlight
significant
distinctions
corresponding
mechanisms.
Advances
designs
industry‐relevant
electrolysis
are
also
summarized,
reveal
progress
moving
practical
forward
accelerating
synergies
material
science
engineering.
Perspectives
challenges
electrocatalyst
design
strategies
proposed
finally
further
lab‐scale
large‐scale
electrocatalysis
applications.
Chemical Reviews,
Год журнала:
2024,
Номер
124(7), С. 3694 - 3812
Опубликована: Март 22, 2024
Electrocatalytic
water
splitting
driven
by
renewable
electricity
has
been
recognized
as
a
promising
approach
for
green
hydrogen
production.
Different
from
conventional
strategies
in
developing
electrocatalysts
the
two
half-reactions
of
(e.g.,
and
oxygen
evolution
reactions,
HER
OER)
separately,
there
growing
interest
designing
bifunctional
electrocatalysts,
which
are
able
to
catalyze
both
OER.
In
addition,
considering
high
overpotentials
required
OER
while
limited
value
produced
oxygen,
is
another
rapidly
exploring
alternative
oxidation
reactions
replace
hybrid
toward
energy-efficient
generation.
This
Review
begins
with
an
introduction
on
fundamental
aspects
splitting,
followed
thorough
discussion
various
physicochemical
characterization
techniques
that
frequently
employed
probing
active
sites,
emphasis
reconstruction
during
redox
electrolysis.
The
design,
synthesis,
performance
diverse
based
noble
metals,
nonprecious
metal-free
nanocarbons,
overall
acidic
alkaline
electrolytes,
thoroughly
summarized
compared.
Next,
their
application
also
presented,
wherein
anodic
include
sacrificing
agents
oxidation,
pollutants
oxidative
degradation,
organics
upgrading.
Finally,
concise
statement
current
challenges
future
opportunities
presented
hope
guiding
endeavors
quest
sustainable
Energy Technology,
Год журнала:
2022,
Номер
10(11)
Опубликована: Сен. 8, 2022
Green
hydrogen
production
by
renewables‐powered
water
electrolysis
holds
the
key
to
energy
sustainability
and
a
carbon‐neutral
future.
The
sluggish
kinetics
of
water‐splitting
reactions,
namely,
evolution
reaction
(HER)
oxygen
(OER),
however,
remains
bottleneck
technology.
High‐entropy
materials,
due
their
compositional
flexibility,
structural
stability,
synergy
between
various
elemental
components,
have
recently
aroused
considerable
interest
in
catalyzing
reactions.
Herein,
timely
review
recent
achievements
is
provided
high‐entropy
materials
for
electrolysis.
An
overview
different
kinds
HER
OER
half‐reactions
introduced,
followed
discussion
theoretical
experimental
efforts
understanding
fundamental
origins
enhanced
catalytic
performance
observed
on
catalysts.
Various
design
strategies,
including
control
size
shape,
construction
porous
structure,
engineering
defect,
formation
hybrid/composite
develop
catalysts
with
improved
are
highlighted.
Finally,
remaining
challenges
pointed
out
corresponding
perspectives
address
these
put
forward
promote
development
research
field
Abstract
Oxygen
evolution
reaction
(OER)
is
a
key
half‐reaction
in
many
electrochemical
transformations,
and
efficient
electrocatalysts
are
critical
to
improve
its
kinetics
which
typically
sluggish
due
multielectron‐transfer
nature.
Perovskite
oxides
popular
category
of
OER
catalysts,
while
their
activity
remains
insufficient
under
the
conventional
adsorbate
scheme
where
scaling
relations
limit
enhancement.
The
lattice
oxygen‐mediated
mechanism
(LOM)
has
been
recently
reported
overcome
such
boost
catalysis
over
several
doped
perovskite
catalysts.
However,
direct
evidence
supporting
LOM
participation
still
very
little
because
doping
strategy
applied
would
introduce
additional
active
sites
that
may
mask
real
mechanism.
Herein,
dopant‐free,
cation
deficiency
manipulation
tailor
bulk
diffusion
properties
perovskites
without
affecting
surface
reported,
providing
perfect
platform
for
studying
contribution
catalysis.
Further
optimizing
A‐site
achieves
candidate
with
excellent
intrinsic
activity,
also
demonstrates
outstanding
performance
rechargeable
Zn–air
batteries
water
electrolyzers.
These
findings
not
only
corroborate
role
electrocatalysis,
but
provide
an
effective
way
rational
design
better
catalyst
materials
clean
energy
technologies.
Abstract
Development
of
cost‐effective
water
splitting
technology
that
allows
low‐overpotential
operation
at
high
current
density
with
non‐precious
catalysts
is
the
key
for
large‐scale
hydrogen
production.
Herein,
it
demonstrated
versatile
perovskite‐based
oxides,
usually
applied
operating
low
and
room
temperature
in
alkaline
solution,
can
be
developed
into
low‐cost,
highly
active
durable
electrocatalysts
densities
a
zero‐gap
anion
exchange
membrane
electrolyzer
cell
(AEMEC).
The
composite
perovskite
mixed
phases
Ruddlesden–Popper
single
as
anode
AEMEC
exhibits
promising
performance
an
overall
water‐splitting
2.01
A
cm
−2
voltage
only
2.00
V
60
°C
stable
performance.
elevated
to
promote
diffusion
boosts
oxygen
evolution
kinetics
by
enhancing
lattice‐oxygen
participation.
bifunctionality
perovskites
further
promises
more
symmetrical
configuration,
primary
both
electrodes
delivers
3.00
2.42
V.
This
work
greatly
expands
use
robust
industrial
great
practical
application
merit.
Angewandte Chemie International Edition,
Год журнала:
2023,
Номер
62(40)
Опубликована: Авг. 15, 2023
Abstract
Heteroatom
doping
has
emerged
as
a
highly
effective
strategy
to
enhance
the
activity
of
metal‐based
electrocatalysts
toward
oxygen
evolution
reaction
(OER).
It
is
widely
accepted
that
does
not
switch
OER
mechanism
from
adsorbate
(AEM)
lattice‐oxygen‐mediated
(LOM),
and
enhanced
attributed
optimized
binding
energies
intermediates.
However,
this
seems
inconsistent
with
fact
overpotential
doped
(<300
mV)
considerably
smaller
than
limit
AEM
(>370
mV).
To
determine
origin
inconsistency,
we
select
phosphorus
(P)‐doped
nickel‐iron
mixed
oxides
model
observe
enhances
covalency
metal‐oxygen
bonds
drive
pathway
transition
LOM,
thereby
breaking
adsorption
linear
relation
between
*OH
*OOH
in
AEM.
Consequently,
obtained
P‐doped
display
small
237
mV
at
10
mA
cm
−2
.
Beyond
P,
similar
also
observed
on
sulfur
doping.
These
findings
offer
new
insights
into
substantially
originating
heteroatom
Green Chemistry,
Год журнала:
2023,
Номер
25(10), С. 3767 - 3790
Опубликована: Янв. 1, 2023
Schematic
illustration
of
interface/surface
engineering
strategies
with
various
effective
approaches
for
high-performance
HER/OER
electrocatalysts
in
seawater.
Chemical Society Reviews,
Год журнала:
2024,
Номер
53(11), С. 5593 - 5625
Опубликована: Янв. 1, 2024
The
oxygen
evolution
reaction
(OER)
mechanisms
using
transition
metal-based
electrocatalysts
are
instrumental
in
providing
novel
insights
into
both
natural
and
artificial
energy
conversion
processes.
Energy & Environmental Science,
Год журнала:
2023,
Номер
16(12), С. 5721 - 5770
Опубликована: Янв. 1, 2023
Improved
performance
of
proton
ceramic
electrochemical
cells
(PCECs)
through
material
development
and
structural
design,
application
PCECs
for
efficient
energy
conversion
render
them
promising
clean
sustainable
development.