ACS Applied Nano Materials,
Год журнала:
2024,
Номер
7(2), С. 1863 - 1875
Опубликована: Янв. 10, 2024
Soft
wearable
sensing
devices
have
attracted
extensive
research
attention
in
the
fields
of
e-skin
and
human
health
monitoring
due
to
advantages
integrated
functions
good
biocompatibility.
However,
existing
sensors
are
unable
achieve
a
highly
sensitive
response
over
wide
range.
In
addition,
require
an
external
power
supply
during
utilization.
To
overcome
this
key
challenge,
paper,
we
propose
conductive
ink
GN-CNTs
prepared
with
graphene
carbon
nanotubes
as
fillers
N,N-dimethylformamide
solvent.
A
self-powered
flexible
microsystem
bionic
round-leaf
motherwort
structure
is
constructed
using
thermoplastic
polyamide
film
substrate.
The
(BRMS),
which
can
reduce
stress
concentration
distribution,
obtain
larger
tensile
strain
BRMS
electrodes
be
used
for
electrocardiography
(ECG)
signal
acquisition
recording
at
three
different
sites
such
chest,
fingertip,
wrist.
higher
ECG
amplitude
signal-to-noise
ratio.
friction
layer
printed
by
printing
GN-CNT
inks.
Following
this,
nanogenerator
assembled
collect
low-frequency
mechanical
energy.
Supercapacitors
were
assembly
process
silver
paste
coating.
There
no
obvious
capacitance
decay
phenomenon
under
angles
other
deformation
states,
it
has
excellent
energy
storage
performance.
microsystem,
directly
driven
from
source
consisting
supercapacitor.
It
long
time
low-power
detection
motion
medical
monitoring.
Chemical Reviews,
Год журнала:
2024,
Номер
124(2), С. 455 - 553
Опубликована: Янв. 4, 2024
In
the
era
of
Internet-of-things,
many
things
can
stay
connected;
however,
biological
systems,
including
those
necessary
for
human
health,
remain
unable
to
connected
global
Internet
due
lack
soft
conformal
biosensors.
The
fundamental
challenge
lies
in
fact
that
electronics
and
biology
are
distinct
incompatible,
as
they
based
on
different
materials
via
functioning
principles.
particular,
body
is
curvilinear,
yet
typically
rigid
planar.
Recent
advances
design
have
generated
tremendous
opportunities
wearable
bioelectronics,
which
may
bridge
gap,
enabling
ultimate
dream
healthcare
anyone,
anytime,
anywhere.
We
begin
with
a
review
historical
development
healthcare,
indicating
significant
trend
healthcare.
This
followed
by
focal
point
discussion
about
new
design,
particularly
low-dimensional
nanomaterials.
summarize
material
types
their
attributes
designing
bioelectronic
sensors;
we
also
cover
synthesis
fabrication
methods,
top-down,
bottom-up,
combined
approaches.
Next,
discuss
energy
challenges
progress
made
date.
addition
front-end
devices,
describe
back-end
machine
learning
algorithms,
artificial
intelligence,
telecommunication,
software.
Afterward,
integration
systems
been
applied
various
testbeds
real-world
settings,
laboratories
preclinical
clinical
environments.
Finally,
narrate
remaining
conjunction
our
perspectives.
Stretchable
strain
sensors
are
essential
for
various
applications
such
as
wearable
electronics,
prosthetics,
and
soft
robotics.
Strain
with
high
range,
minimal
hysteresis,
fast
response
speed
highly
desirable
accurate
measurements
of
large
dynamic
deformations
bodies.
Current
stretchable
mostly
rely
on
deformable
conducting
materials,
which
often
have
difficulties
in
achieving
these
properties
simultaneously.
In
this
study,
we
introduce
capacitive
sensor
concepts
based
origami-inspired
three-dimensional
mesoscale
electrodes
formed
by
a
mechanically
guided
assembly
process.
These
exhibit
up
to
200%
stretchability
1.2%
degree
<22
ms
time,
small
sensing
area
(~5
mm
2
),
directional
responses.
To
showcase
potential
applications,
demonstrate
the
use
distributed
measuring
multimodal
continuum
arm.
ACS Nano,
Год журнала:
2024,
Номер
18(3), С. 2520 - 2530
Опубликована: Янв. 10, 2024
Stretchable
flexible
strain
sensors
based
on
conductive
elastomers
are
rapidly
emerging
as
a
highly
promising
candidate
for
popular
wearable
electronic
and
soft-mechanical
sensing
devices.
However,
due
to
the
intrinsic
limitations
of
low
fidelity
high
hysteresis,
existing
unable
exploit
their
full
application
potential.
Herein,
design
strategy
successive
three-dimensional
crack
network
is
proposed
cope
with
uncoordinated
variation
output
resistance
signal
arising
from
elastomer.
The
electrical
characteristics
sensor
dominated
by
through
greater
concise
mechanism.
As
result,
developed
elastomer
bionic
exhibit
excellent
performance
in
terms
smaller
overshoot
response,
lower
hysteresis
(∼2.9%),
an
ultralow
detection
limit
(0.00179%).
What's
more,
universal
applicable
many
different
fillers
(including
0-D,
1-D,
2-D
fillers).
This
approach
improves
accuracy
reliability
holds
potential
various
applications
fields
e-skin
soft
robotic
systems.
Chemical Reviews,
Год журнала:
2024,
Номер
124(17), С. 9899 - 9948
Опубликована: Авг. 28, 2024
Electronic
skins
(e-skins)
have
seen
intense
research
and
rapid
development
in
the
past
two
decades.
To
mimic
capabilities
of
human
skin,
a
multitude
flexible/stretchable
sensors
that
detect
physiological
environmental
signals
been
designed
integrated
into
functional
systems.
Recently,
researchers
increasingly
deployed
machine
learning
other
artificial
intelligence
(AI)
technologies
to
neural
system
for
processing
analysis
sensory
data
collected
by
e-skins.
Integrating
AI
has
potential
enable
advanced
applications
robotics,
healthcare,
human–machine
interfaces
but
also
presents
challenges
such
as
diversity
model
robustness.
In
this
review,
we
first
summarize
functions
features
e-skins,
followed
feature
extraction
different
models.
Next,
discuss
utilization
design
e-skin
address
key
topic
implementation
e-skins
accomplish
range
tasks.
Subsequently,
explore
hardware-layer
in-skin
before
concluding
with
an
opportunities
various
aspects
AI-enabled
Sensors,
Год журнала:
2024,
Номер
24(10), С. 2958 - 2958
Опубликована: Май 7, 2024
Machine
learning
and
deep
technologies
are
rapidly
advancing
the
capabilities
of
sensing
technologies,
bringing
about
significant
improvements
in
accuracy,
sensitivity,
adaptability.
These
advancements
making
a
notable
impact
across
broad
spectrum
fields,
including
industrial
automation,
robotics,
biomedical
engineering,
civil
infrastructure
monitoring.
The
core
this
transformative
shift
lies
integration
artificial
intelligence
(AI)
with
sensor
technology,
focusing
on
development
efficient
algorithms
that
drive
both
device
performance
enhancements
novel
applications
various
engineering
fields.
This
review
delves
into
fusion
ML/DL
shedding
light
their
profound
design,
calibration
compensation,
object
recognition,
behavior
prediction.
Through
series
exemplary
applications,
showcases
potential
AI
to
significantly
upgrade
functionalities
widen
application
range.
Moreover,
it
addresses
challenges
encountered
exploiting
these
for
offers
insights
future
trends
advancements.
Applied Physics Letters,
Год журнала:
2025,
Номер
126(3)
Опубликована: Янв. 20, 2025
Resistive
strain
sensors
show
great
potential
in
motion
detection,
medicine
and
healthcare,
human–machine
interaction
owing
to
their
ease
of
fabrication,
simple
structure,
adjustable
electrical
performance.
However,
developing
high-performance
flexible
resistive
with
high
sensitivity,
linearity,
low
hysteresis
remains
a
challenge.
In
this
work,
we
report
an
LMPs
(liquid
metal
particles)/MXene/AgNWs
sensor
(LMA
sensor)
sensitivity
(GF
=
6.339),
linearity
(R2
0.982
24),
(0.452%).
process,
AgNWs
act
as
bridge
between
the
MXene
nanosheets,
change
contact
area
nanosheets
under
stretching
endows
sensitivity.
The
aggregated
function
structural
framework,
capitalizing
on
intrinsic
fluidic
characteristics
serve
adhesive
silver
nanowires
(AgNWs)
nanosheets.
This
approach
effectively
minimizes
interstitial
spaces
MXene.
formation
Ti-O
→
Ga3+
coordination
bonds
has
strengthened
interfacial
interactions.
Consequently,
demonstrates
superior
hysteresis.
addition,
sensitive
layer
buckled
structure
is
obtained
by
stretch-release.
inhibits
inhomogeneous
irreversible
connection
losses
material,
further
improving
sensor's
mechanical
durability.
LMA
can
accurately
detect
various
human
activities
such
breathing
expression
detection.
work
will
provide
avenue
for
sensors.
ACS Applied Materials & Interfaces,
Год журнала:
2025,
Номер
unknown
Опубликована: Март 13, 2025
Flexible
electronic
circuits
are
critical
in
biomedical
devices,
human–machine
interfaces,
and
wearable
sensing
systems,
which
further
require
flexible
conductive
materials
with
high
conductivity,
stretchability,
electrical
stability.
Liquid
metal
(LM)
has
attracted
much
attention
due
to
its
unique
metallic
conductivity
room-temperature
fluidic
properties.
However,
LM's
surface
tension
properties
increase
the
difficulty
of
patterning
processing.
Here,
we
report
a
scalable
simple
fabrication
method
based
on
femtosecond
laser
ablation
for
facile
patterned
LM
Cu
composite
electrodes
(LM@Cu)
substrates.
The
LM@Cu
electrodes,
fabricated
utilizing
exceptional
micro–nanoprocessing
precision
three-dimensional
capabilities
lasers,
exhibit
resolution
(approximately
5
μm),
superior
(4.08
×
104
S/cm),
enhanced
In
addition
planar
circuits,
successfully
3D-patterned
electrode
PDMS
hemispheres.
presence
ultrathin
copper
foils
significantly
improves
wettability
substrate,
occurrence
alloying
reactions
between
circumvents
challenges
posed
by
pattern
fabrication.
We
investigated
electromechanical
under
twisting,
bending,
stretching
detail.
addition,
serve
as
an
interface
rigid
devices
When
suffering
external
damage,
remain
working
after
brush
coating
excellent
fluidity
LM.
To
explore
this
approach's
potential,
demonstrate
various
applications
electronics,
including
stretchable
luminous
wristbands,
strain
sensors,
"visible"
thermotherapy
panels
relieving
aching
joints.
Advanced Materials,
Год журнала:
2023,
Номер
36(2)
Опубликована: Сен. 15, 2023
Abstract
Electronic
textiles
harmoniously
interact
with
the
human
body
and
surrounding
environment,
offering
tremendous
interest
in
smart
wearable
electronics.
However,
their
wide
application
faces
challenges
due
to
lack
of
stable
stretchable
power
electrodes/devices
multifunctional
design.
Herein,
an
intrinsically
liquid
metal‐based
fibrous
anode
for
a
Zn‐ion
battery
(ZIB)
is
reported.
Benefiting
from
feature
superior
deformability
metal,
optimized
Zn
ion
concentration
distribution
(002)
deposition
behavior
are
observed,
which
result
dendrite‐free
performance
even
under
stretching.
With
strain
50%,
ZIB
maintains
high
capacity
139.8
mAh
cm
−3
(corresponding
83.0%
initial
value)
after
300
cycles,
outperforming
bare
fiber‐based
ZIB.
The
seamlessly
integrates
sensor,
Joule
heater,
wirelessly
charging
device,
provides
supply
signal
monitoring
personal
thermal
management,
holding
promise
electronic
textiles.