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Engineering strategies to optimize lignocellulosic biorefineries
Bin Long
,
Fuzhong Zhang
, Susie Y. Dai
, Marcus Foston
,
Yinjie J. Tang
, Joshua S. Yuan
Department of Energy, Environmental & Chemical Engineering
Roy and Diana Vagelos Division of Biology & Biomedical Sciences (DBBS)
DBBS - Biochemistry, Biophysics, and Structural Biology
DBBS - Computational and Systems Biology
DBBS - Molecular Microbiology and Microbial Pathogenesis
DBBS - Plant and Microbial Biosciences
Center of Regenerative Medicine
McKelvey School of Engineering
Institute of Clinical and Translational Sciences (ICTS)
Research output
:
Contribution to journal
›
Review article
›
peer-review
30
Scopus citations
Overview
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Keyphrases
Engineering Strategies
100%
Lignocellulosic Biorefinery
100%
Environmental Impact
33%
Economic Impact
33%
Biofuel
33%
Artificial Intelligence
33%
Substrate Utilization
33%
Microbial Metabolism
33%
Biomass-based
33%
Fermentation
33%
Lignocellulosic Biomass
33%
Biorefinery
33%
Value-added Products
33%
Fossil Fuels
33%
Bioconversion
33%
Metabolic Engineering
33%
Economic Viability
33%
Biomass Valorization
33%
Synthetic Biology Tools
33%
Bioplastics
33%
Carbon Emission Reduction
33%
Systems Biology Tools
33%
Life Cycle Assessment
33%
Techno-economic Analysis
33%
Economic Life
33%
Biomass Deconstruction
33%
Engineering
Engineering Strategy
100%
Lignocellulosic Biorefinery
100%
Microbial
66%
Limitations
33%
Fossil Fuel
33%
Metabolic Engineering
33%
Bioconversion
33%
Life Cycle Assessment
33%
Biofuel
33%
Artificial Intelligence
33%
Synthetic Biology Tool
33%
Lignocellulosic Biomass
33%
Biomass Valorization
33%
Biorefineries
33%
Bioplastics
33%
Chemical Engineering
Artificial Intelligence
100%
Techno-economic Analysis
100%
Synthetic Biology
100%
Pharmacology, Toxicology and Pharmaceutical Science
Fossil Fuel
100%
Biofuel
100%