about
Recent progress in the development of solid catalysts for biomass conversion into high value-added chemicalsSlow reactant-water exchange and high catalytic performance of water-tolerant Lewis acids.Mechanistic studies on the cascade conversion of 1,3-dihydroxyacetone and formaldehyde into α-hydroxy-γ-butyrolactone.Competitive Adsorption of Substrate and Solvent in Sn-Beta Zeolite During Sugar Isomerization.Interrogating the Lewis Acidity of Metal Sites in Beta Zeolites with 15N Pyridine Adsorption Coupled with MAS NMR Spectroscopy.Tin-containing zeolites are highly active catalysts for the isomerization of glucose in water.Metalloenzyme-like catalyzed isomerizations of sugars by Lewis acid zeolitesQuantitative NMR Approach to Optimize the Formation of Chemical Building Blocks from Abundant Carbohydrates.Transformations of biomass-derived platform molecules: from high added-value chemicals to fuels via aqueous-phase processing.State of the art of Lewis acid-containing zeolites: lessons from fine chemistry to new biomass transformation processes.Design of Lewis-acid centres in zeolitic matrices for the conversion of renewables.Potential and challenges of zeolite chemistry in the catalytic conversion of biomass.Lactide Synthesis and Chirality Control for Polylactic acid Production.Heterogeneous Catalytic Conversion of Biobased Chemicals into Liquid Fuels in the Aqueous Phase.Development of New Carbon Resources: Production of Important Chemicals from Algal Residue.Highly active and recyclable Sn-MWW zeolite catalyst for sugar conversion to methyl lactate and lactic acid.High surface area zincosilicates as efficient catalysts for the synthesis of ethyl lactate: an in-depth structural investigation.Tin-catalyzed conversion of biomass-derived triose sugar and formaldehyde to α-hydroxy-γ-butyrolactone.Base-free, one-pot chemocatalytic conversion of glycerol to methyl lactate using supported gold catalysts.Porous metallosilicates for heterogeneous, liquid-phase catalysis: perspectives and pertaining challenges.The concept, reality and utility of single-site heterogeneous catalysts (SSHCs).Snβ-zeolite catalyzed oxido-reduction cascade chemistry with biomass-derived molecules.Chemo-Catalyzed Pathways to Lactic Acid and LactatesIdentifying Sn Site Heterogeneities Prevalent Among Sn-Beta ZeolitesEnvironmental and economic assessment of lactic acid production from glycerol using cascade bio- and chemocatalysisHighly Selective Lewis Acid Sites in Desilicated MFI Zeolites for Dihydroxyacetone Isomerization to Lactic Acid
P2860
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P2860
description
2009 nî lūn-bûn
@nan
2009年の論文
@ja
2009年学术文章
@wuu
2009年学术文章
@zh
2009年学术文章
@zh-cn
2009年学术文章
@zh-hans
2009年学术文章
@zh-my
2009年学术文章
@zh-sg
2009年學術文章
@yue
2009年學術文章
@zh-hant
name
Zeolite-catalyzed isomerization of triose sugars.
@en
Zeolite-catalyzed isomerization of triose sugars.
@nl
type
label
Zeolite-catalyzed isomerization of triose sugars.
@en
Zeolite-catalyzed isomerization of triose sugars.
@nl
prefLabel
Zeolite-catalyzed isomerization of triose sugars.
@en
Zeolite-catalyzed isomerization of triose sugars.
@nl
P2093
P356
P1433
P1476
Zeolite-catalyzed isomerization of triose sugars.
@en
P2093
Claus Hviid Christensen
Esben Taarning
Jianmin Xiong
Martin Spangsberg Holm
Ryan M West
Shunmugavel Saravanamurugan
P304
P356
10.1002/CSSC.200900099
P577
2009-06-27T00:00:00Z