| Literature DB >> 25550720 |
Francesco Trotta1, Fabrizio Caldera1, Roberta Cavalli2, Andrea Mele3, Carlo Punta3, Lucio Melone3, Franca Castiglione3, Barbara Rossi4, Monica Ferro3, Vincenza Crupi5, Domenico Majolino5, Valentina Venuti5, Dominique Scalarone1.
Abstract
A new hyper-branched water-soluble polymer was synthesized by reacting β-cyclodextrin with pyromellitic dianhydride beyond the critical conditions that allow the phenomenon of gelation to occur. The molar ratio between the monomers is a crucial parameter that rules the gelation process. Nevertheless, the concentration of monomers in the solvent phase plays a key role as well. Hyper-branched β-cyclodextrin-based polymers were obtained performing the syntheses with excess of solvent and cross-linking agent, and the conditions for critical dilution were determined experimentally. A hyper-branched polymer with very high water solubility was obtained and fully characterized both as for its chemical structure and for its capability to encapsulate substances. Fluorescein was used as probe molecule to test the complexation properties of the new material.Entities:
Keywords: complexation; gelation; polyelectrolytes; soluble β-cyclodextrin polymers; β-cyclodextrin
Year: 2014 PMID: 25550720 PMCID: PMC4273288 DOI: 10.3762/bjoc.10.271
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1FTIR spectra of branched β-CD polymer (a), cross-linked β-CD nanosponge (b) and pyromellitic dianhydride (c).
Figure 2SEC curves of the β-CD-based polymer before (solid line) and after ultrafiltration with cut-off size of 30000 Da (dashed line).
Figure 3Thermogravimetric curves of the β-CD-based polymer after ultrafiltration with cut-off size of 3000 Da (blue line), 10000 Da (red line) and 30000 Da (green line).
Figure 4Raman (a) and FTIR–ATR (b) spectra of the branched β-CD-based polymer in the wavenumber range of 1500–1800 cm−1, together with the deconvolution components of the C=O stretching band.
Figure 5Ratio between the intensity of the bands assigned to ester groups (ICO1) and to the free carboxylic groups (ICO2) for cross-linked β-CD nanosponges (hexagons) and the β-CD-based polymer (pentagon). β-CD/Pyro = β-CD/pyromellitic dianhydride molar ratio.
Figure 6NMR spectra of fluorescein in D2O solution (a) and in the presence of the hyper-branched β-CD polymer (b). pH range: 8.25–7.50.
1H NMR chemical shifts (ppm) of sodium fluorescein (SF) in D2O solution without and with branched β-CD polymer. The numbers refer to SF atom numbering, symbols in parentheses indicate signal multiplicity.a
| Sample | 1 (d) | 2 (t) | 3 (t) | 5/10 (d) | 4 (d) | 6/9 (d) | 7/8 (d) |
| SF | 7.77 | 7.47 | 7.26 | 6.93 | 6.59 | 6.53 | 6.42 |
| SF in β-CD-polymer | 7.81 | 7.56 | 7.42 | 7.03 | 6.83 | 6.57 | 6.45 |
| Δδ | 0.04 | 0.09 | 0.16 | 0.13 | 0.24 | 0.04 | 0.03 |
apH range: 8.25–7.50.
Figure 7UV–vis spectrum of fluorescein with increasing amounts of hyper-branched β-CD polymer. pH range: 8.4–7.2.