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Comparison of mono-rhamnolipids and di-rhamnolipids on microbial enhanced oil recovery (MEOR) applications.
Rocha, Vanessa A L; de Castilho, Lívia V A; de Castro, Rui P V; Teixeira, Douglas B; Magalhães, Augusto V; Gomez, José G C; Freire, Denise M G.
Afiliação
  • Rocha VAL; Biochemical Department, Laboratory of Microbial Biotechnology, Federal University of Rio de Janeiro-Institute of Chemistry, Rio de Janeiro, Brazil.
  • de Castilho LVA; Biochemical Department, Laboratory of Microbial Biotechnology, Federal University of Rio de Janeiro-Institute of Chemistry, Rio de Janeiro, Brazil.
  • de Castro RPV; Ocean Engineering Department, Subsea Technology Laboratory, Federal University of Rio de Janeiro-COPPE Institute, Rio de Janeiro, Brazil.
  • Teixeira DB; Biochemical Department, Laboratory of Microbial Biotechnology, Federal University of Rio de Janeiro-Institute of Chemistry, Rio de Janeiro, Brazil.
  • Magalhães AV; Biochemical Department, Laboratory of Microbial Biotechnology, Federal University of Rio de Janeiro-Institute of Chemistry, Rio de Janeiro, Brazil.
  • Gomez JGC; Biochemical Department, Laboratory of Microbial Biotechnology, Federal University of Rio de Janeiro-Institute of Chemistry, Rio de Janeiro, Brazil.
  • Freire DMG; Laboratory of Bioproducts, University of São Paulo-Institute of Biomedical Sciences, São Paulo, Brazil.
Biotechnol Prog ; 36(4): e2981, 2020 07.
Article em En | MEDLINE | ID: mdl-32083814
Rhamnolipids (RMLs) have more effectiveness for specific uses according to their homologue proportions. Thus, the novelty of this work was to compare mono-RMLs and di-RMLs physicochemical properties on microbial enhanced oil recovery (MEOR) applications. For this, RML produced by three strains of Pseudomonas aeruginosa containing different homologues proportion were used: a mainly mono-RMLs producer (mono-RMLs); a mainly di-RMLs producer (di-RMLs), and the other one that produces relatively balanced amounts of mono-RML and di-RML homologues (mono/di-RML). For mono-RML, the most abundant molecules were Rha-C10 C10 (m/z 503.3), for di-RML were RhaRha-C10 C10 (m/z 649.4) and for Mono/di-RML were Rha-C10 C10 (m/z 503.3) and RhaRha-C10 C10 (m/z 649.4). All RMLs types presented robustness under high temperature and variation of salinity and pH, and high ability for oil displacement, foam stability, wettability reversal and were classified as safe for environment according to the European Union Directive No. 67/548/EEC. For all these properties, it was observed a highlight for mono-RML. Mono-RML presented the lowest surface tension (26.40 mN/m), interfacial tension (1.14 mN/m), and critical micellar concentration (CMC 27.04 mg/L), the highest emulsification index (EI24 100%) and the best wettability reversal (100% with 25 ppm). In addition, mono-RML showed the best acute toxicity value (454 mg/L), making its application potential even more attractive. Based on the results, it was concluded that all RMLs homologues studied have potential for MEOR applications. However, results showed that mono-RML stood out and have the best mechanism of oil incorporation in micelles due their most effective surface-active physicochemical features.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Pseudomonas aeruginosa / Ramnose / Petróleo / Glicolipídeos / Decanoatos Idioma: En Revista: Biotechnol Prog Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Brasil

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Pseudomonas aeruginosa / Ramnose / Petróleo / Glicolipídeos / Decanoatos Idioma: En Revista: Biotechnol Prog Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Brasil