| Literature DB >> 35546808 |
Lei Feng1, Gang Li1, Yueer Yan1, Wenrong Hou1, Yahong Zhang1, Yi Tang1.
Abstract
The present work deals with the one-pot conversion of C6 sugars to methyl glycerate and glycolate via a cascade of retro-aldol condensation and oxidation processes catalyzed by using MoO3 as the Lewis acid catalyst and Au/TiO2 as the oxidation catalyst in methanol. Methyl glycerate (MGLY) is the product of C6 ketose (fructose), while methyl glycolate (MG) is produced from C6 aldose (mannose, glucose). It is found that a good one-pot match between two reactive processes is the key to the production of MGLY and MG with high yield (27.6% MGLY and 39.2% MG). A separated retro-aldol condensation and oxidation process greatly decreases their yields, and even no MGLY can be obtained in this separated process. We attribute this to high instability of glyceraldehyde/glycolaldehyde and their different reaction pathways which mainly depend on whether acetalization of retro-aldol products (glyceraldehyde and glycolaldehyde) occurs with methanol or not. This result opens a new prospect on the accumulation of C3 products other than lactate from biomass-derived carbohydrates. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35546808 PMCID: PMC9085406 DOI: 10.1039/c8ra05612a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Direct conversion of C6 sugars to MGLY and MG via a retro-aldol process and an oxidative esterification process.
Fig. 1(a) XRD patterns of α-MoO3 and Au/TiO2; (b) SEM image of α-MoO3; (c) NH3-TPD profile of the α-MoO3 and (d) TEM of image of Au/TiO2.
Direct conversion of C6 sugars to MGLY and MG in methanol
| Substrate |
|
| Conv.Retro-aldol (mol%) | Selec. (C mol%) |
| Carbon balance (mol%) |
|---|---|---|---|---|---|---|
| FRU | MGLY | |||||
| 353 | 5 | 73.9 | 30.2 | 22.3 | 74.2 | |
| 363 | 1 | 45.7 | 21.4 | 9.8 | 82.7 | |
| 3 | 72.4 | 28.9 | 20.9 | 73.9 | ||
| 5 | 85.3 | 32.4 | 27.6 | 70.4 | ||
| 6 | 87.2 | 31.4 | 27.4 | 68.6 | ||
| MAN | MG | |||||
| 373 | 1 | 22.8 | 52.2 | 11.9 | 95.1 | |
| 2 | 41.9 | 51.0 | 21.4 | 91.5 | ||
| 3 | 53.8 | 50.5 | 27.2 | 89.4 | ||
| 4 | 55.2 | 56.5 | 31.2 | 88.7 | ||
| 5 | 55.8 | 57.9 | 32.3 | 87.5 | ||
| MAN | 393 | 1 | 72.5 | 33.4 | 24.2 | 78.0 |
| 2 | 77.8 | 42.0 | 32.7 | 74.8 | ||
| 3 | 79.7 | 45.4 | 36.2 | 73.9 | ||
| 4 | 80.2 | 48.9 | 39.2 | 71.8 | ||
| 5 | 80.3 | 47.8 | 38.4 | 70.7 | ||
| GLU | 393 | 1 | 39.5 | 35.9 | 14.2 | 81.1 |
| 2 | 50.8 | 37.0 | 18.8 | 77.9 | ||
| 3 | 52.5 | 37.3 | 19.6 | 77.7 | ||
| 4 | 54.2 | 38.7 | 21.0 | 74.3 | ||
| 5 | 56.9 | 36.3 | 20.7 | 71.2 | ||
Reaction conditions: 50 mg of FRU, 5 g of methanol, 50 mg of MoO3, 100 mg of Au/TiO2 and 3 mg of K2CO3, 1 MPa O2.
Reaction conditions: 50 mg of MAN, 5 g of methanol, 50 mg of MoO3, 100 mg of Au/TiO2, 1 MPa O2.
Reaction conditions: 50 mg of MAN, 5 g of methanol, 37.5 mg of MoO3, 80 mg of Au/TiO2, 1 MPa O2.
Reaction conditions: 50 mg of GLU, 5 g of methanol, 50 mg of MoO3, 100 mg of Au/TiO2, 1 MPa O2. Yields (Y) of all products are calculated by carbon atom yields from the original hexoses. Selectivity (Selec.) of MGLY is calculated by YMGLY/Conv.Retro-aldol × 100%, and the corresponding carbon balance is calculated by [1 − Conv.Retro-aldol + YMGLY + Yothers] × 100%, others: GLA, DHA, PYR, ML. Selectivity (Selec.) of MG is calculated by YMG/Conv.Retro-aldol × 100%, and the corresponding carbon balance is calculated by [1 − Conv.Retro-aldol + YMG + Yothers] × 100%, others: GA, DHA.
Two-step conversion of MAN toward MG in methanola
| Step |
|
| Conv.Retro-aldol (mol%) |
|
| Carbon balance (mol%) |
|---|---|---|---|---|---|---|
| (C mol%) | ||||||
| 1 | 393 | 1 | 71.1 | 45.6 | 0 | 74.5 |
| 2 | 373 | 1 | 76.4 | 3.5 | 29.5 | 59.3 |
| 2 | 78.8 | 3.2 | 30.4 | 56.8 | ||
Reaction conditions: 50 mg of MAN, 5 g of methanol, 50 mg of MoO3 (step 1); 5 mL reaction solution of step 1 without MoO3, 100 mg of Au/TiO2, 1 MPa O2 (step 2). Yields (Y) of products are calculated by carbon atom yield from the original hexose. Carbon balance is calculated by [1 − Conv.Retro-aldol + YGA + YMG + YDHA] × 100%.
Fig. 2(a) Carbon yield of MGLY for FRU conversion in methanol containing different mass ratios of MoO3 to Au/TiO2 (left), and different FRU concentrations (right); (b) carbon yield of MG for MAN conversion in methanol with different MAN concentrations (left), and reuse of MoO3 and Au/TiO2 catalysts.
Scheme 2The proposed different reaction pathways of GA to MG and GLA to MLGY.
Fig. 3(a) 1H-NMR spectra of GA in methanol before (1)/after (2) thermal treatment, (b) 1H-NMR spectra of GLA in methanol before (1)/after (2) thermal treatment.