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dc.contributor.editorKoller, Martin
dc.date.accessioned2022-11-17T16:23:31Z
dc.date.available2022-11-17T16:23:31Z
dc.date.issued2022
dc.identifierONIX_20221117_9783036550404_29
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/93772
dc.description.abstractNowadays, we are witnessing highly dynamic research activities related to the intriguing field of biodegradable materials with plastic-like properties. These activities are currently intensified by a strengthened public awareness of prevailing ecological issues connected to growing piles of plastic waste, microplastic formation, and increasing greenhouse gas emissions; this goes hand-in-hand with the ongoing depletion of fossil feedstocks, which are traditionally used to produce full carbon backbone polymers. To a steadily increasing extend, polyhydroxyalkanoate (PHA) biopolyesters, a family of plastic-like materials with versatile material properties, are considered a future-oriented solution for diminishing these concerns. PHA production is based on renewable resources, and occurs in a bio-mediated fashion by the action of living organisms. If accomplished in an optimized way, PHA production and the entire PHA lifecycle are embedded into nature´s closed cycles of carbon. Holistic improvement of PHA production, applicable on an industrially relevant scale, calls for inter alia: consolidated knowledge about the enzymatic and genetic particularities of PHA accumulating organisms, in-depth understanding of the kinetics of the bioprocess, the selection of appropriate inexpensive fermentation feedstocks, tailoring the composition of PHA on the level of the monomeric constituents, optimized biotechnological engineering, and novel strategies for PHA recovery from biomass characterized by minor energy and chemical requirement.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issuesen_US
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues::TBX History of engineering and technologyen_US
dc.subject.otherpolyhydroxyalkanoate
dc.subject.otherPHOU
dc.subject.otherwater soluble PHA
dc.subject.othernetwork
dc.subject.othertannic acid
dc.subject.otherpolyhydroxyalkanoates
dc.subject.otherPHB
dc.subject.otherPAT
dc.subject.otherSynechocystis sp. PCC 6714
dc.subject.otherprocess monitoring
dc.subject.otherultrasound particle manipulation
dc.subject.otherTepidimonas taiwanensis
dc.subject.othergrape pomace
dc.subject.otherthermophiles
dc.subject.othercheese whey
dc.subject.otheracetic acid
dc.subject.otherAcetobacter pasteurianus C1
dc.subject.otherBacillus sp. CYR-1
dc.subject.otherPHA
dc.subject.otherbiodegradable plastic
dc.subject.otherPHBHHx
dc.subject.otherCO2
dc.subject.otherCupriavidus necator
dc.subject.otherhydrogen-oxidizing bacterium
dc.subject.otherbiopolymers
dc.subject.othercommercialization
dc.subject.othercopolyester
dc.subject.otherhomopolyester
dc.subject.otherpolyhydroxybutyrate
dc.subject.otherbiopolymer
dc.subject.otherplasticizer
dc.subject.otherferulic acid
dc.subject.otherpoly(3-hydroxybutyrate)
dc.subject.othercell retention
dc.subject.othervolatile fatty acids
dc.subject.otherBacillus megaterium
dc.subject.otherpolyhydroxyalkanoates (PHA)
dc.subject.otherpolyhydroxybutyrate (PHB)
dc.subject.othermixed microbial cultures
dc.subject.otheractivated sludge
dc.subject.otherrespiration kinetics
dc.subject.otherMonod kinetics
dc.subject.otheroxygen mass balance
dc.subject.otherhysteresis
dc.subject.otherprocess modelling
dc.subject.othersugar beet molasses
dc.subject.otherhydrolysis
dc.subject.othersynthesis
dc.subject.otherproperties of PHA
dc.subject.othercyanobacteria
dc.subject.otherhabitat conditions
dc.subject.othersampling
dc.subject.otherwild types
dc.subject.othersingle species selection
dc.subject.otherpurification
dc.subject.otheraxenic cultures
dc.subject.othergrowth
dc.subject.othernon-phototrophic CO2 assimilation
dc.subject.otherKnallgas cultivation
dc.subject.otherChemolithotrophs
dc.subject.otherATEX compliant bioreactor
dc.subject.otherdissolved oxygen control
dc.subject.othermcl-PHAs
dc.subject.otherscl-PHAs
dc.subject.otherpolythioester
dc.subject.other3-hydroxybutyrate
dc.subject.otherbioplastic
dc.subject.otheralpha-methylated
dc.subject.otherrubber-like elasticity
dc.subject.otherpolyhydroxyalkanoate (PHA)
dc.subject.otherpoly(3-hydroxybutyrate-co-3-hydroxyvalerate) (P(HB-co-HV))
dc.subject.othermixed microbial culture (MMC)
dc.subject.otherhypochlorite digestion
dc.subject.othersubcritical water (SBW)
dc.subject.otherautotrophs
dc.subject.otherbiopolyesters
dc.subject.otherindustrialization
dc.subject.othermcl-PHA
dc.subject.otherpolymer processing
dc.subject.otherpolymer recovery
dc.subject.otherprocess design
dc.titleAdvances in Polyhydroxyalkanoate (PHA) Production, Volume 3
dc.typebook
oapen.identifier.doi10.3390/books978-3-0365-5040-4
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783036550404
oapen.relation.isbn9783036550398
oapen.pages294
oapen.place.publicationBasel


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