Selective extraction of glutaric acid from biological production systems using n-butanol

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dc.contributor.authorY H Han-
dc.contributor.authorY L Park-
dc.contributor.authorS Y Yang-
dc.contributor.authorH R Jung-
dc.contributor.authorJ C Joo-
dc.contributor.authorB K Song-
dc.contributor.authorS H Lee-
dc.contributor.authorK Park-
dc.contributor.authorJungoh Ahn-
dc.contributor.authorY H Yang-
dc.date.accessioned2020-02-07T16:30:55Z-
dc.date.available2020-02-07T16:30:55Z-
dc.date.issued2020-
dc.identifier.issn1226-086X-
dc.identifier.uri10.1016/j.jiec.2019.09.047ko
dc.identifier.urihttps://oak.kribb.re.kr/handle/201005/19247-
dc.description.abstractGlutaric acid has numerous industrial applications and it could be used as a polymer building block. Glutaric acid can be produced by chemical or biological methods. Although the biological production of glutaric acid has attracted considerable attention, there are few effective and economical processes for recovering glutaric acid from water based systems. Herein, we investigated the selective extraction of glutaric acid via physical extraction using nine different solvents compared with trioctylamine/toluene as the reactive extraction, which is the only reported method for recovering glutaric acid from biological production systems. Comparisons of the extraction yield, purity, linear solvation energy relationship between the solvents, and reactant selectivity revealed n-butanol to be a suitable solvent for the extraction of glutaric acid, with a high extraction yield and selectivity obtained in less than 30 min under optimized conditions. Furthermore, repetitive extraction allowed 98.4% of glutaric acid to be extracted from the aqueous phase with high solvent recovery and high purity, making this method suitable for practical application.-
dc.publisherElsevier-
dc.titleSelective extraction of glutaric acid from biological production systems using n-butanol-
dc.title.alternativeSelective extraction of glutaric acid from biological production systems using n-butanol-
dc.typeArticle-
dc.citation.titleJournal of Industrial and Engineering Chemistry-
dc.citation.number0-
dc.citation.endPage104-
dc.citation.startPage98-
dc.citation.volume82-
dc.contributor.affiliatedAuthorJungoh Ahn-
dc.contributor.alternativeName한영훈-
dc.contributor.alternativeName박예림-
dc.contributor.alternativeName양수연-
dc.contributor.alternativeName정혜림-
dc.contributor.alternativeName주정찬-
dc.contributor.alternativeName송봉근-
dc.contributor.alternativeName이상현-
dc.contributor.alternativeName박경문-
dc.contributor.alternativeName안정오-
dc.contributor.alternativeName양영훈-
dc.identifier.bibliographicCitationJournal of Industrial and Engineering Chemistry, vol. 82, pp. 98-104-
dc.identifier.doi10.1016/j.jiec.2019.09.047-
dc.subject.keywordGlutaric acid-
dc.subject.keywordPhysical extraction-
dc.subject.keywordn-Butanol-
dc.subject.keywordLinear solvation energy relationship-
dc.subject.keywordSelectivity-
dc.subject.keywordOptimization-
dc.subject.localGlutaric acid-
dc.subject.localglutaric acid-
dc.subject.localGlutaric Acid-
dc.subject.localPhysical extraction-
dc.subject.localn-Butanol-
dc.subject.localLinear solvation energy relationship-
dc.subject.localselectivity-
dc.subject.localSelectivity-
dc.subject.localoptimization-
dc.subject.localOptimization-
dc.description.journalClassY-
Appears in Collections:
Division of Bio Technology Innovation > BioProcess Engineering Center > 1. Journal Articles
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