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Functional Natural-Based Polymers



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Autore: Mignon Arn Visualizza persona
Titolo: Functional Natural-Based Polymers Visualizza cluster
Pubblicazione: Basel, : MDPI Books, 2022
Descrizione fisica: 1 electronic resource (776 p.)
Soggetto topico: Research & information: general
Biology, life sciences
Biochemistry
Soggetto non controllato: light conversion film
cellulose acetate
europium
sensitization
X-ray photoelectron spectroscopy
surface plasmon resonance
thin film
quantum dot
4-(2-pyridylazo)resorcinol
chitosan
graphene oxide
3D printing
carboxymethyl cellulose
hydrogel
lyophilization
dissolution
release model
customization
NO-donor
topical release
polymeric matrices
microbial infections
wound healing
blood circulation
semisynthetic polymers
natural rubber
rice husk ash
alginate
mechanical properties
dielectric properties
nanohydrogel
food applications
biopolymers
polysaccharide
neural network
chicken feet
sensorial quality
food quality
gelatine
hyaluronic acid
polyethylene oxide
electrospinning
nanofibers
wound dressings
pectin
pectinase
wheat bran
banana peel
Bacillus amyloliquefaciens
prebiotics
mucilage
pectin polysaccharide
Opuntia ficus-indica
aloe vera
acemannan
Cactaceae
Asphodelaceae
porcine gastric mucin
methacryloyl mucin
double-cross-linked networks
circular dichroism
mechanical characterization
date palm trunk mesh
cellulose
lignocellulosic waste
alpha cellulose
nanocellulose
agro-byproduct
Bacillus licheniformis
bioconversion
pomelo albedo
sucrolytic
lubricant
tribology
albumin deposition
contact lens
surface roughness
bio-based polyurethanes
prepolymers
cellulose-derived polyol
cellulose-citrate
polyurethane composites
poly(lactic acid)
nanocomposites
tannin
lignin
thermal degradation kinetics
decomposition mechanism
pyrolysis
nanocomposite
nanofertilizer
slow release
ammonia oxidase gene
quantitative polymerase chain reaction
microflora N cycle
nutrient use efficiency
soil N content
aerogels
cold plasma coating
hydrophobization
pore structure
chitinous fishery wastes
chitinase
crab shells
Paenibacillus
N-acetyl-D-glucosamine
phenol
adhesive hydrogels
nanomaterials
surface modification
latex
lignocellulosic fibers
conventional fillers
CNC
esterification reaction
graft copolymerization
hydrophobic modification
flocculant
crosslinking
peptides
glutaraldehyde
specified risk materials
laccase
melanin
decolorization
natural mediators
glycerol
polymer electrolyte
ionic conductivity
biochemistry
pH and rumen temperature
protozoa
zero valent iron
nanoparticles
ethylene glycol
methylene blue
polyhydroxyalkanoates
poly(3-hydroxybutyrate-co-3-hydroxyhexanoate
melt processing
extrusion
injection molding
elongation at break
crystallization
DoE
oil palm biomass waste
anionic hydrogel
swelling
salt crosslinking agent
CoNi nanocomposite
cellulose paper
antibacterial potential
degradation
annealing
acetylation
potato starch
emulsion capacity
FTIR
Malva parviflora
natural polymers
physicochemical properties
rheology
birch wood
pre-treatment
process parameter
lignocellulose
2-furaldehyde
Komagataeibacter
stretchable bacterial cellulose
enhanced strain
vitamin C
collagen
anisotropy
electron irradiation
tensile test
activated carbon
MnO2
Co NPs
antibacterial activity
hydrogels
antimicrobial activities
functionalized materials
cellulose derivatives
flexor tendon repair
anti-inflammatory
anti-adhesion
antimicrobial
polymer-based constructs
biosorbent
copper
adsorption
model studies
aqueous medium
biodegradable polymers
chemical modification
food packaging
free radical polymerization
superabsorbent
water-retaining agent
thermal properties
Mimosa pudica mucilage
extraction optimization
Box-Behnken design
response surface methodology
pH-responsive on–off switching
zero-order release
antimicrobial activity
bacterial cellulose
cytotoxicity
nisin
stability
Persona (resp. second.): MignonArn
Sommario/riassunto: Natural polymers are already used for a variety of biomedical applications, including drug delivery, wound healing, tissue engineering, biosensors, etc. However, they have also found other applications, for example, in the food industry, the pharmaceutical industry, as firefighting materials, water purification, etc. Different polysaccharide and protein-based systems have been developed. They each have their properties that render them useful for certain applications such as the water solubility of alginate, the thermo-sensitivity of chitosan, the abundance of cellulose and starch, or the cell adhesion and proliferation of gelatin and collagen. This Special Issue will explore the design, synthesis, processing, characterization, and applications of new functional natural-based polymers.
Titolo autorizzato: Functional Natural-Based Polymers  Visualizza cluster
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910595079003321
Lo trovi qui: Univ. Federico II
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