Emerging colored and transparent radiative cooling: Fundamentals, progress, and challenges
Yalu Xin,
No information about this author
Li Chen,
No information about this author
Wei Gao
No information about this author
et al.
Materials Today,
Journal Year:
2025,
Volume and Issue:
unknown
Published: Jan. 1, 2025
Language: Английский
Flexible capacitive pressure sensor with high sensitivity and wide detection range applying solvent-exchanged porous lignin-cellulose hydrogel as the dielectric layer
International Journal of Biological Macromolecules,
Journal Year:
2025,
Volume and Issue:
unknown, P. 140702 - 140702
Published: Feb. 1, 2025
Language: Английский
2.5D femtosecond laser microstructuring of complex surface patterns
Jaka Petelin,
No information about this author
Jernej Jan Kočica,
No information about this author
Jaka Mur
No information about this author
et al.
Surfaces and Interfaces,
Journal Year:
2025,
Volume and Issue:
61, P. 106099 - 106099
Published: Feb. 23, 2025
Language: Английский
Enhanced properties of dual-scale bionic superhydrophobic surface on Ti-6Al-4V fabricated via laser powder bed fusion
Xuezhang Hou,
No information about this author
Zhenyu Zhang,
No information about this author
Dong Wang
No information about this author
et al.
Surface and Coatings Technology,
Journal Year:
2025,
Volume and Issue:
unknown, P. 132044 - 132044
Published: March 1, 2025
Language: Английский
Advanced multi-nozzle electrohydrodynamic printing: mechanism, processing, and diverse applications at micro/nano-scale
Li Yin,
No information about this author
Guangming Zhang,
No information about this author
Jinrun Zhang
No information about this author
et al.
International Journal of Extreme Manufacturing,
Journal Year:
2024,
Volume and Issue:
7(1), P. 012008 - 012008
Published: Nov. 13, 2024
Abstract
Electrohydrodynamic
(EHD)
jet
printing
represents
a
novel
micro/nano-scale
additive
manufacturing
process
that
utilises
high-voltage
induced
electric
field
between
the
nozzle
and
substrate
to
print
micro/nanoscale
structures.
EHD
is
particularly
advantageous
for
fabrication
on
flexible
or
non-flat
substrates
of
large
aspect
ratio
micro/nanostructures
composite
multi-material
Despite
this,
has
yet
be
fully
industrialised
due
its
low
throughput,
which
primarily
caused
by
limitations
serial
technology.
The
parallel
multi-nozzle
array-based
become
most
promising
option
achieve
large-scale
increasing
number
nozzles
realise
multichannel
printing.
This
paper
reviews
recent
development
technology,
analyses
motion
with
multi-nozzle,
explains
origins
crosstalk
effect
under
discusses
several
widely
used
methods
overcoming
it.
work
also
summarises
impact
different
parameters
describes
current
using
as
well
method
they
can
realised
independently.
In
addition,
it
presents
an
additional
significant
utilisation
aside
from
enhancing
single-nozzle
production
efficiency,
phase
change
materials
through
multi-nozzle.
Finally,
future
direction
discussed
envisioned.
Language: Английский
Research progress of different printing techniques based on Ln3+ ions doped up-conversion fluorescence ink
Keke Wang,
No information about this author
Haihan Fan,
No information about this author
Lanlan Fan
No information about this author
et al.
Journal of Rare Earths,
Journal Year:
2024,
Volume and Issue:
unknown
Published: June 1, 2024
Language: Английский
Dissipative Particle Dynamics of Nano-Alumina Agglomeration in UV-Curable Inks
Chunlai Li,
No information about this author
Liang Guo,
No information about this author
Weihan Zheng
No information about this author
et al.
Polymers,
Journal Year:
2024,
Volume and Issue:
16(18), P. 2609 - 2609
Published: Sept. 14, 2024
Ultraviolet
(UV)
ink
is
a
primary
type
of
used
in
additive
manufacturing
with
3D
inkjet
printing.
However,
aggregation
presents
challenge
nano-inkjet
printing,
affecting
the
stability
and
quality
printing
fluid
potentially
leading
to
clogging
nanometer-sized
nozzles.
This
paper
utilizes
Dissipative
Particle
Dynamics
(DPD)
simulation
investigate
behavior
alumina
blend
1,6-Hexanediol
diacrylate
(HDDA)
Trimethylolpropane
triacrylate
(TMPTA).
By
analyzing
effects
solid
content,
polymer
component
ratios,
dispersant
concentration
on
aggregation,
optimal
formulation
was
identified.
Compared
traditional
experimental
methods,
DPD
simulations
not
only
reduce
costs
time
but
also
reveal
particle
mechanisms
that
are
difficult
explore
through
providing
crucial
theoretical
basis
for
optimizing
formulations.
study
demonstrates
ceramic
achieves
performance
content
20%,
an
HDDA-to-TMPTA
ratio
4:1,
9%
oleic
acid
as
dispersant.
Language: Английский
Optimizing Stereolithography Printing Parameters for Enhanced Microfluidic Chip Quality
Smart and Sustainable Manufacturing Systems,
Journal Year:
2024,
Volume and Issue:
8(1), P. 136 - 149
Published: Dec. 30, 2024
ABSTRACT
In
the
pursuit
of
innovative
biosensing
technologies
for
critical
applications
such
as
early
breast
cancer
detection,
development
efficient
and
portable
devices
is
crucial.
This
work
describes
a
unique
stereolithography
(SLA)-based
three-dimensional–printed
microfluidic
device
intended
particularly
optofluidic
with
just
microliter
quantities
blood,
similar
to
diabetes
monitoring
devices.
Unlike
typical
cumbersome
lab
equipment
Biacore
machine,
which
needs
large
blood
sample
volumes
laboratory
processing,
technology
allows
patient-operated,
at-home
testing,
decreasing
requirement
hospital
visits.
The
main
contribution
this
study
optimize
SLA
printing
parameters,
namely
exposure
duration,
in
order
improve
chip’s
transparency
channel
quality.
improvement
exact
immobilization
biorecognition
components
within
channels,
resulting
sensitive
biomarker
detection.
By
extending
we
considerably
increase
structural
integrity
optical
clarity
are
successful
biosignal
transduction
labeled
sensing
applications.
not
only
leads
cheaper
cost
faster
manufacturing
compared
conventional
but
also
offers
increased
performance
real
bio-sensing
Thus,
our
represents
big
step
forward
accessible,
efficient,
compact
early-stage
illness
diagnosis,
outperforming
existing
lab-based
diagnostics.
Language: Английский