Your browser doesn't support javascript.
loading
A Multifunctional Cosolvent Pair Reveals Molecular Principles of Biomass Deconstruction.
Patri, Abhishek S; Mostofian, Barmak; Pu, Yunqiao; Ciaffone, Nicholas; Soliman, Mikhael; Smith, Micholas Dean; Kumar, Rajeev; Cheng, Xiaolin; Wyman, Charles E; Tetard, Laurene; Ragauskas, Arthur J; Smith, Jeremy C; Petridis, Loukas; Cai, Charles M.
Afiliación
  • Patri AS; Department of Chemical and Environmental Engineering, Bourns College of Engineering , University of California, Riverside , 900 University Avenue , Riverside , California 92521 , United States.
  • Mostofian B; Center for Environmental Research and Technology, Bourns College of Engineering , University of California, Riverside , 1084 Columbia Avenue , Riverside , California 92507 , United States.
  • Soliman M; NanoScience Technology Center and ¶Department of Physics , University of Central Florida , Orlando , Florida 32826 , United States.
  • Smith MD; NanoScience Technology Center and ¶Department of Physics , University of Central Florida , Orlando , Florida 32826 , United States.
  • Cheng X; Center for Environmental Research and Technology, Bourns College of Engineering , University of California, Riverside , 1084 Columbia Avenue , Riverside , California 92507 , United States.
  • Wyman CE; College of Pharmacy , The Ohio State University , Columbus , Ohio 43210 , United States.
  • Tetard L; Department of Chemical and Environmental Engineering, Bourns College of Engineering , University of California, Riverside , 900 University Avenue , Riverside , California 92521 , United States.
  • Ragauskas AJ; Center for Environmental Research and Technology, Bourns College of Engineering , University of California, Riverside , 1084 Columbia Avenue , Riverside , California 92507 , United States.
  • Smith JC; NanoScience Technology Center and ¶Department of Physics , University of Central Florida , Orlando , Florida 32826 , United States.
J Am Chem Soc ; 141(32): 12545-12557, 2019 08 14.
Article en En | MEDLINE | ID: mdl-31304747
The complex structure of plant cell walls resists chemical or biological degradation, challenging the breakdown of lignocellulosic biomass into renewable chemical precursors that could form the basis of future production of green chemicals and transportation fuels. Here, experimental and computational results reveal that the effect of the tetrahydrofuran (THF)-water cosolvents on the structure of lignin and on its interactions with cellulose in the cell wall drives multiple synergistic mechanisms leading to the efficient breakdown and fractionation of biomass into valuable chemical precursors. Molecular simulations show that THF-water is an excellent "theta" solvent, such that lignin dissociates from itself and from cellulose and expands to form a random coil. The expansion of the lignin molecules exposes interunit linkages, rendering them more susceptible to depolymerization by acid-catalyzed cleavage of aryl-ether bonds. Nanoscale infrared sensors confirm cosolvent-mediated molecular rearrangement of lignin in the cell wall of micrometer-thick hardwood slices and track the disappearance of lignin. At bulk scale, adding dilute acid to the cosolvent mixture liberates the majority of the hemicellulose and lignin from biomass, allowing unfettered access of cellulolytic enzymes to the remaining cellulose-rich material, allowing them to sustain high rates of hydrolysis to glucose without enzyme deactivation. Through this multiscale analysis, synergistic mechanisms for biomass deconstruction are identified, portending a paradigm shift toward first-principles design and evaluation of other cosolvent methods to realize low cost fuels and bioproducts.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Solventes / Agua / Celulosa / Biomasa / Furanos / Lignina Idioma: En Revista: J Am Chem Soc Año: 2019 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Solventes / Agua / Celulosa / Biomasa / Furanos / Lignina Idioma: En Revista: J Am Chem Soc Año: 2019 Tipo del documento: Article País de afiliación: Estados Unidos
...