| Literature DB >> 35548764 |
Haian Xia1,2, Siquan Xu1,2, Hong Hu1,2, Jiahuan An1,2, Changzhi Li3.
Abstract
5-hydroxymethylfurfural (HMF) is a very important versatile platform compound derived from renewable biomass. The functionalized molecule with an aldehyde group, a hydroxyl group and a furan ring provides great potential for the production of a wide variety of valuable chemicals. This review highlights the latest advances in the catalytic conversion of HMF into value-added chemicals by some important reactions including (1) aerobic oxidation of HMF into furan-based aldehydes and acids such as 5-hydroxymethyl-2-furancarboxylic acid (HMFCA), 2,5-diformylfuran (DFF), and furandicarboxylic acid (FDCA), (2) reductive amination of HMF to amine, (3) the synthesis of aromatics by Diels-alder reaction followed by a dehydration reaction, (4) catalytic reduction of HMF into 2,5-bis(hydroxymethyl)furan (BHMF), and 2,5-dimethyl furan (DMF), (5) catalytic oxidation of HMF into maleic anhydride, and some other important transformations. The review mainly focuses on the recent progress in bio-catalytic, electrocatalytic, and heterogeneous catalytic transformation of HMF into high value chemicals over the past few years. Moreover, an outlook is provided to highlight opportunities and challenges related to this hot research topic. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35548764 PMCID: PMC9085621 DOI: 10.1039/c8ra05308a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1HMF as a platform compound for diverse reaction.
Scheme 2Schematic illustration of the transformation of starch to HMF.
Scheme 3Reaction pathway for aqueous HMF oxidation.
Different catalysts for the conversion of HMF into FDCA
| Entry | Catalyst | Base |
| Solvent | HMF con. (%) | FDCA yield (%) | Ref. |
|---|---|---|---|---|---|---|---|
| 1 | Au/TiO2 | NaOH | 22/22 | H2O | 100 | 79 |
|
| 2 | Pt/C | NaOH | 22/22 | H2O | 100 | 68 |
|
| 3 | Pd/ZrO2/LaO2 | NaOH | 90/4 | H2O | 100 | 91 |
|
| 4 | Au–Pd/AC | NaOH | 60/2 | H2O | 100 | 95 |
|
| 5 | Mn/Fe (3 : 1) mixed oxides | NaOH | 90/24 | H2O | 93 | 32 |
|
| 6 | Merrifield resin-Co-Py | — | 100/24 | CH3CN | 96 | 91 |
|
| 7 | NNC | K2CO3 | 80/48 | H2O | 100 | 80 |
|
| 8 | Pt/C–O–Mg | — | 11 012 | H2O | 100 | 97 |
|
| 9 | Pt/CNT | — | 95/12 | H2O | 100 | 98 |
|
| 10 | Ru/CTF | — | 140/1 | H2O | 99 | 78 |
|
| 11 | Ru/MnCo2O4 | — | 12 010 | H2O | 100 | 99 |
|
Scheme 4Possible mechanism of the photocatalytic oxidation of HMF into FDCA with the CoPz/g-C3N4 catalyst.
Catalytic hydrogenolysis of HMF into DMF
| Entry | Catalyst | Solvent | H2 source |
| HMF con. (%) | DMF yield (%) | Ref. |
|---|---|---|---|---|---|---|---|
| 1 | PtCo@HCS | 1-BuOH | H2 (10 bar) | 180/2 | 100 | 98 |
|
| 2 | Ni–W2C/AC | THF | H2 (10 bar) | 180/3 | 100 | 96 |
|
| 3 | Pd/C | THF | Formic acid | 150/2 | 100 | >95 |
|
| 4 | Pd/C | [EMIM]Cl-MeCN | H2 (62 bar) | 120/1 | 47 | 32 |
|
| 5 | Pd/C | ScCO2–H2O | H2 (10 bar) | 80/2 | 100 | 100 |
|
| 6 | CuRu/C | 1-BuOH | H2 (6.8 bar) | 220/– | – | 70 |
|
| 7 | Ru/Co3O4 | THF | H2 (7 bar) | 130/24 | 100 | 94 |
|
| 8 | Ru-HT | 2-Propanol | H2 (10 bar) | 220/4 | 100 | 58 |
|
| 9 | Cu–PMO | Sc methanol | MeOH | 260/3 | 100 | 48 |
|
Scheme 5Detailed reaction network of DMF and ethylene at 528 K.[87]
Scheme 6Diels–Alder pathways to PTA and DMT from HMF using oxidation steps.
Scheme 7Oxidation of various furan derivatives to MA with H2O2 as the oxidant in formic acid solvent.