| Literature DB >> 23019466 |
Abstract
During the past several years my students and I have been utilizing certain small-molecule hosts to create nanostructuredEntities:
Keywords: cyclodextrins; inclusion compounds; nanoconfinement; organization; polymers; properties; release; urea
Year: 2012 PMID: 23019466 PMCID: PMC3458756 DOI: 10.3762/bjoc.8.151
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Formation of and coalescence of a polymer sample from its crystalline cyclodextrin inclusion complex [2].
Figure 2Crystal structures and wide-angle X-ray diffractograms of neat (a) cage and (b) columnar IC γ-CD [20].
Figure 3DSC cooling scans of as-received (upper) and coalesced N-6 (lower) [58].
Figure 4DSC heating scans for asr-PVAc (upper) and c-PVAc coalesced from its γ-CD IC (lower) [72].
Measured densities for as-received and coalesced PVAcs [71].
| sample | density at 25 °C (g/cm3) | density at 58 °C (g/cm3) |
| asr-PVAc | 1.093 | 1.040 |
| c-PVAc | 1.156 | 1.077 |
Figure 5Melt-crystallization curves of as-received and coalesced PCL observed at 20, 10, 5, and 1 °C/min cooling rates [65].
Thermal properties and crystallinities of various PCL-PPG-PCL triblock copolymer samples, as revealed by DSC [21].
| sample | Δ | ||
| as-synthesized copolymer | 57.3 | 58.6 | 56.5 |
| coalesced from α-CD IC | 63.8 | 76.8 | 74.1 |
| coalesced from γ-CD IC | 63.0 | 51.3 | 49.5 |
Figure 6X-ray diffraction patterns of as-synthesized PCL-b-PLLA films (a) and coalesced PCL-b-PLLA films (b), after various enzymatic degradation times [16,25].
Figure 7Polarizing photomicrographs of (a) PLLA, (b) PCL, (c) solution-cast, and (d) coalesced PLLA/PCL blends [8].
Figure 8X-ray diffractograms of (a) pure PCL and (b) PLLA and PCL/PLLA blends obtained by casting from dioxane solution (c) and hot-water coalescence from PCL/PLLA–CD IC (d) [16,25].
Figure 9MDSC scans of the (a) first and (b) second heating runs recorded for the PC/PMMA/PVAc-2 blend. The sample was held for 3 min at 170 °C after the first heating [28].
Figure 10Storage modulus, loss modulus, and apparent viscosity (G’, G’’, and n*, respectively) for asr- and c-PCL melts, (top and bottom, respectively), as obtained through oscillatory melt rheology (T = 90 °C; testing stress = 750 Pa; pretest hold time = 1 minute) [65,70].
Figure 11Crystalline all trans (t) and γ-CD-included g±tg conformations of PET [76].
Figure 12DSC scans for p-PET [70].
Densities of asr-PET and nuc-PET [69].
| sample | density at 25 °C (g/cm3) |
| asr-PET | 1.368 |
| nuc-PET | 1.386 |
Figure 13DSC cooling scans from the melts of (I) asr-N-6, (II) nuc-N-6, and (III) asr/nuc N-6 film sandwich. Melt-crystallization peaks (a), (b), (c), and (d) in the DSC scans correspond to Tc = 183, 192, 186, and 191 °C, respectively [64].
Figure 14Mechanical properties of N-6 films [62].
Figure 15Tensile testing of as-received/as-received and as-received/nucleated nylon-6 film sandwiches conducted according to ASTM D-882-97. Each value of the mechanical properties reported is an average of at least five film-sandwich specimens [64].