Nanomaterials,
Journal Year:
2024,
Volume and Issue:
14(24), P. 2048 - 2048
Published: Dec. 21, 2024
Photocatalytic
technology
holds
significant
promise
for
sustainable
development
and
environmental
protection
due
to
its
ability
utilize
renewable
energy
sources
degrade
pollutants
efficiently.
In
this
study,
BiOI
nanosheets
(NSs)
were
synthesized
using
a
simple
water
bath
method
with
varying
amounts
of
mannitol
reaction
temperatures
investigate
their
structural,
morphological,
photoelectronic,
photocatalytic
properties.
Notably,
the
introduction
played
critical
role
in
inducing
transition
from
an
n-type
p-type
semiconductor,
as
evidenced
by
Mott–Schottky
(M-S)
band
structure
analyses.
This
transformation
enhanced
density
holes
(h+)
primary
charge
carriers
resulted
most
negative
conduction
(CB)
position
(−0.822
V
vs.
NHE),
which
facilitated
generation
superoxide
radicals
(·O2−)
activity.
Among
samples,
BiOI-0.25-60
NSs
(synthesized
0.25
g
at
60
°C)
exhibited
highest
performance,
characterized
largest
specific
surface
area
(24.46
m2/g),
optimal
gap
(2.28
eV),
efficient
photogenerated
separation.
experiments
demonstrated
that
achieved
superior
methylene
blue
(MB)
degradation
efficiency
96.5%
under
simulated
sunlight,
1.14
times
higher
than
BiOI-0-70
NSs.
Additionally,
effectively
degraded
tetracycline
(TC),
2,4-dichlorophenol
(2,4-D),
rhodamine
B
(Rh
B).
Key
factors
such
photocatalyst
concentration,
MB
solution
pH
analyzed,
excellent
recyclability,
retaining
over
94.3%
activity
after
three
cycles.
Scavenger
tests
further
identified
·O2−
h+
dominant
active
species
driving
process.
pivotal
modulating
semiconductor
characteristics
nanomaterials
is
underscored,
particularly
promoting
enhancing
efficiency.
These
findings
provide
valuable
strategy
designing
high-performance
photocatalysts
remediation
applications.
Nativa,
Journal Year:
2025,
Volume and Issue:
13(1), P. 46 - 54
Published: March 7, 2025
This
review
examines
biohydrogen's
potential
as
a
renewable
energy
source,
focusing
on
production
technologies,
feedstock
efficiency,
and
agricultural
applications.
Key
technologies
include
dark
fermentation,
which
has
been
identified
an
efficient,
environmentally
friendly
process
for
biohydrogen
from
organic
waste
residues.
The
study
highlights
the
benefits
of
sustainable
agriculture,
including
reduced
carbon
emissions
efficiency.
Quantitative
data
supports
role
in
decarbonizing
particularly
energy-intensive
activities
like
irrigation
soil
preparation.
findings
suggest
that
can
be
sustainably
integrated
into
systems,
providing
circular
economy
solution
by
converting
high-energy,
low-emission
fuel.
Keywords:
sustainability;
energy;
biomass
conversion;
fermentation;
reduction.
Biohidrogênio
como
fonte
de
energia
renovável:
tecnologias
produção,
eficiência
matéria-prima
e
aplicações
na
agricultura
RESUMO:
Esta
revisão
examina
o
potencial
do
biohidrogênio
renovável,
com
foco
em
agrícolas.
As
principais
incluem
fermentação
escura,
que
foi
identificada
um
processo
eficiente
ecologicamente
correto
para
produção
partir
resíduos
orgânicos
O
estudo
destaca
os
benefícios
sustentável,
incluindo
redução
das
emissões
carbono
energética.
Os
dados
quantitativos
apoiam
papel
descarbonização
da
agricultura,
particularmente
atividades
uso
intensivo
energia,
irrigação
preparação
solo.
descobertas
sugerem
pode
ser
integrado
forma
sustentável
aos
sistemas
agrícolas,
fornecendo
uma
solução
economia
ao
converter
combustível
alta
baixa
emissão.
Palavras-chave:
sustentabilidade;
agrícola;
conversão
biomassa;
escura;
carbono.