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Biocatalysts based on nanozeolite-enzyme complexes: Effects of alkoxysilane surface functionalization and biofuel production using microalgae lipids feedstock.
de Vasconcellos, Adriano; Miller, Alex Henrique; Aranda, Donato A G; Nery, José Geraldo.
Affiliation
  • de Vasconcellos A; Laboratory for Clean Energy Technology (LACET), Physics Department, São Paulo State University-UNESP, Campus de São José do Rio Preto, SP, 15054-000, Brazil.
  • Miller AH; Laboratory for Clean Energy Technology (LACET), Physics Department, São Paulo State University-UNESP, Campus de São José do Rio Preto, SP, 15054-000, Brazil.
  • Aranda DAG; Greentec Laboratory, School of Chemistry, Federal University of Rio de Janeiro, RJ, 21941-972, Brazil.
  • Nery JG; Laboratory for Clean Energy Technology (LACET), Physics Department, São Paulo State University-UNESP, Campus de São José do Rio Preto, SP, 15054-000, Brazil. Electronic address: nery@ibilce.unesp.br.
Colloids Surf B Biointerfaces ; 165: 150-157, 2018 May 01.
Article in En | MEDLINE | ID: mdl-29477935
Nanozeolites with different crystallographic structures (Nano/TS1, Nano/GIS, Nano/LTA, Nano/BEA, Nano/X, and Nano-X/Ni), functionalized with (3-aminopropyl)trimethoxysilane (APTMS) and crosslinked with glutaraldehyde (GA), were studied as solid supports for Thermomyces lanuginosus lipase (TLL) immobilization. Physicochemical characterizations of the surface-functionalized nanozeolites and nanozeolite-enzyme complexes were performed using XRD, SEM, AFM, ATR-FTIR, and zeta potential measurements. The experimental enzymatic activity results indicated that the nanozeolitic supports functionalized with APTMS and GA immobilized larger amounts of enzymes and provided higher enzymatic activities, compared to unfunctionalized supports. Correlations were observed among the nanozeolite surface charges, the enzyme immobilization efficiencies, and the biocatalyst activities. The catalytic performance and reusability of these enzyme-nanozeolite complexes were evaluated in the ethanolysis transesterification of microalgae oil to fatty acid ethyl esters (FAEEs). TLL immobilized on the nanozeolite supports functionalized with APTMS and GA provided the most efficient biocatalysis, with FAEEs yields above 93% and stability during five reaction cycles. Lower FAEEs yields and poorer catalytic stability were found for nanozeolite-enzyme complexes prepared only by physical adsorption. The findings indicated the viability of designing highly efficient biocatalysts for biofuel production by means of chemical modulation of nanozeolite surfaces. The high biocatalyst catalytic efficiency observed in ethanolysis reactions using a lipid feedstock that does not compete with food production is an advantage that should encourage the industrial application of these biocatalysts.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Silanes / Zeolites / Nanoparticles / Biocatalysis / Biofuels / Microalgae / Lipids Language: En Journal: Colloids Surf B Biointerfaces Journal subject: QUIMICA Year: 2018 Document type: Article Affiliation country: Brazil Country of publication: Netherlands

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Silanes / Zeolites / Nanoparticles / Biocatalysis / Biofuels / Microalgae / Lipids Language: En Journal: Colloids Surf B Biointerfaces Journal subject: QUIMICA Year: 2018 Document type: Article Affiliation country: Brazil Country of publication: Netherlands