OPTIMIZATION OF ALKALINE AND DILUTE ACID PRETREATMENT OF AGAVE BAGASSE BY RESPONSE SURFACE METHODOLOGY

Utilization of lignocellulosic materials for the production of value-added chemicals or biofuels generally requires a pretreatment process to overcome the recalcitrance of the plant biomass for further enzymatic hydrolysis and fermentation stages. Two of the most employed pretreatment processes are...

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Detalles Bibliográficos
Autores: CAMBEROS FLORES, JESUS N., AVILA LARA, ABIMAEL I., MENDOZA PEREZ, JORGE A., MESSINA FERNANDEZ, SARAH RUTH, SANCHEZ HERRERA, LETICIA M., PEREZ PIMIENTA, JOSE ANTONIO, JIMENEZ RUIZ, EDGAR IVAN, SALDAÑA DURAN, CLAUDIA E.
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2015
País:México
Institución:Universidad Autónoma de Nayarit
Repositorio:Repositorio Institucional Aramara de la UAN
Idioma:inglés
OAI Identifier:oai:dspace.uan.mx:123456789/53
Acceso en línea:http://dspace.uan.mx:8080/jspui/handle/123456789/53
Access Level:acceso abierto
Palabra clave:agave bagasse
high solids
biomass pretreatment
optimization
characterization
INGENIERÍA Y TECNOLOGÍA [7]
Descripción
Sumario:Utilization of lignocellulosic materials for the production of value-added chemicals or biofuels generally requires a pretreatment process to overcome the recalcitrance of the plant biomass for further enzymatic hydrolysis and fermentation stages. Two of the most employed pretreatment processes are the ones that used dilute acid (DA) and alkaline (AL) catalyst providing specific effects on the physicochemical structure of the biomass, such as high xylan and lignin removal for DA and AL, respectively. Another important effect that need to be studied is the use of a high solids pretreatment (≥15%) since offers many advantaged over lower solids loadings, including increased sugar and ethanol concentrations (in combination with a high solids saccharification), which will be reflected in lower capital costs; however, this data is currently limited. In this study, several variables, such as catalyst loading, retention time, and solids loading, were studied using response surface methodology (RSM) based on a factorial central composite design of DA and AL pretreatment on agave bagasse using a range of solids from 3 to 30% (w/w) to obtain optimal process conditions for each pretreatment. Subsequently enzymatic hydrolysis was performed using Novozymes Cellic CTec2 and HTec2 presented as total reducing sugar (TRS) yield. Pretreated biomass was characterized by wet-chemistry techniques and selected samples were analyzed by calorimetric techniques, and scanning electron/confocal fluorescent microscopy. RSM was also used to optimize the pretreatment conditions for maximum TRS yield. The optimum conditions were determined for AL pretreatment: 1.87% NaOH concentration, 50.3 min and 13.1% solids loading, whereas DA pretreatment: 2.1% acid concentration, 33.8 min and 8.5% solids loading.