| Literature DB >> 33066580 |
Alexandre S Miranda1,2, Paula M Marcos1,3, José R Ascenso4, Mário N Berberan-Santos2, Rachel Schurhammer5, Neal Hickey6, Silvano Geremia6.
Abstract
FluorescentEntities:
Keywords: DFT calculations; NMR studies; UV-Vis absorption studies; X-ray diffraction; alkylammonium hydrochlorides; chiral recognition; dihomooxacalix[4]arenes; ditopic receptors; fluorescence studies; naphthyl(thio)urea anion receptors
Mesh:
Substances:
Year: 2020 PMID: 33066580 PMCID: PMC7587342 DOI: 10.3390/molecules25204708
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthesis of naphthyl(thio)ureas 5a–5c. Reaction conditions: (i) Br(CH2)3CN, K2CO3, MeCN, Δ; (ii) n-BuI, NaH, THF/DMF, Δ; (iii) NaBH4/CoCl2, MeOH, rt; (iv) Naph-NCX, CHCl3, rt.
Figure 1Solid state structures of (a) 5a and (b) 5b. The structures, with very similar cone conformations, show significant differences in conformation of the lower rim substituents. The atomic species are represented in CPK colours. Hydrogen atoms are omitted for clarity.
Comparison of cone conformations: Dihedral angles between corresponding aryl planes of the calixarene cones (A, B, C and D) and the mean planes of the bridging methylene carbon atoms for various dihomooxacalix[4]arenes.
| A (°) | B (°) | C (°) | D (°) | |
|---|---|---|---|---|
|
| 124 a | 69 | 143 a | 99 |
|
| 125 | 83 | 140 a | 88 a |
| 125 a | 66 | 131 a | 101 | |
| Phurea c (I) | 123 a | 64 | 133 a | 100 |
| Phure ac (II) | 121 a | 74 | 137 a | 97 |
a Ureido substituent on lower ring; b data taken from ref. 23; c data taken from ref. 20 for two independent molecules in the asymmetric unit. See Figure 2 and text for labelling of rings A, B, C and D.
Figure 2Crystal packing in the unit cells of (a) 5a and (b) 5b. In both cases the crystal packing is characterized by inversion-related antiparallel chains of bifurcated H-bonds. In 5a, each molecule in the chain is generated by a 21 screw operation and the chains are parallel to the b-axis. Each chain is composed of molecules with the same chirality and the antiparallel chain is composed of opposite chirality. In 5b, the molecules in each chain are generated by the glide planes and the chains are parallel to the a-c cell diagonal. The atomic species are represented in CPK colours. Hydrogen atoms are omitted for clarity.
Association constants (log Kass) a of dihomooxa naphthyl(thio)ureas 5a-5c in CDCl3 at 25 °C.
| Spherical | Trigonal Planar | Tetrahedral | |||||||
|---|---|---|---|---|---|---|---|---|---|
| F− | Cl− | Br− | I− | NO3− | AcO− | BzO− | HSO4− | H2PO4− | |
| I. Radius/Å b | 1.33 | 1.81 | 1.96 | 2.20 | 1.79 | 2.32 | — | 1.90 | 2.00 |
|
| 2.80 | 2.60 | 2.12 | 1.78 | 2.12 | 2.51 | 2.76 | 2.54 | 2.25 |
|
| 3.12 | 2.91 | 2.46 | 1.94 | 2.38 | 3.17 | 3.07 | 2.52 | 2.67 |
|
| 2.67 | 1.75 | 1.06 | 1.09 | 1.06 | 2.17 | 2.01 | 1.89 | 2.02 |
a Estimated error < 10%; b Data quoted in Marcus, I. Ion Properties; Marcel Dekker: New York, pp. 50–51,1997.
Figure 31H-NMR partial spectra (500 MHz, CDCl3, 25 °C) of Naph-urea 5a with several equiv of TBA chloride.
Figure 4(a) Changes in the UV (a) and emission (b) spectra of Naph-urea 5a (5.0 × 10−5 M) upon addition of TBA F (up to 10 equiv.) in CH2Cl2. The arrows indicate the decreasing or increasing amounts of salt.
Photophysical properties of Naphureas 5a and 5b in CH2Cl2 at 25 °C.
|
| Stokes Shift a |
| ||||||
|---|---|---|---|---|---|---|---|---|
|
| 283 |
| 382 | 99 | 8.93 | 0.31 b | 0.035 | 0.077 |
| 303 |
| 382 | 79 | 6.26 | 0.085 b | — | — | |
| 303 |
| 382 | 79 | 1.98 | 0.048 b | 0.024 | 0.48 | |
|
| 282 |
| 379 | 97 | 7.57 | 0.26 b | 0.034 | 0.098 |
| 302 |
| 379 | 77 | 6.63 | 0.16 b | — | — | |
| 302 |
| 379 | 77 | 3.27 | 0.078 b | 0.024 | 0.28 |
a Computed as ; b Against quinine sulfate ΦF = 0.546 in H2SO4 0.5 M.
Association constants (log Kass) a of dihomooxa naphthyl(thio)ureas 5a–5c in C H2Cl2 at 25 °C.
| Spherical | Trigonal Planar | Tetrahedral | |||||||
|---|---|---|---|---|---|---|---|---|---|
| F− | Cl− | Br− | NO3− | AcO− | BzO− | HSO4− | H2PO4− | ||
|
| Abs | 4.21 | 3.59 | 3.20 | 3.19 | 3.79 | 3.94 | 3.13 | 3.06 |
| Emi | 4.05 | 3.48 | 3.14 | 3.12 | 3.66 | 4.00 | 3.01 | 2.90 | |
|
| Abs | 4.36 | 3.69 | 3.37 | 3.31 | 4.16 | 4.08 | 2.90 | 3.16 |
| Emi | 4.34 | 3.67 | 3.23 | 3.23 | 4.21 | 3.84 | 2.97 | 3.14 | |
|
| Abs | 4.18 | 3.01 | 2.71 | 3.07 | 3.66 | 3.71 | 2.87 | 3.14 |
a Estimated error < 10%.
Figure 5Structures of the ammonium hydrochloride guests studied.
Figure 61H-NMR spectra (500 MHz) of: (a) [5a] = 1.0 mM at 253 K in CDCl3; (b) [5a] = [n-BuNH2·HCl] = 1 mM at 253 K in CDCl3; (c) [5a] = [n-BuNH2·HCl] = 1 mM at 243 K in CDCl3/DMSO-d6, 5:1, v/v. * Denotes residual solvent signals.
Figure 71H-NMR spectra (500 MHz, 233 K, CDCl3/CD3OD, 5:1, v/v) of: (a) [5a] = 1.0 mM; (b) [5a] = [GABA·HCl] = 1 mM. * Denotes residual solvent signals.
Figure 81H-NMR spectra (500 MHz, 223 K, CDCl3/CD3OD, 5:1, v/v) of: (a) [5a] = 1.0 mM; (b) [5a] = [sec-BuNH2·HCl] = 1 mM. Inset: 1 and 2 mean the two sets of signals for the s-Bu group of the guest inside the cavity for the two diastereotopic complexes formed. * Denotes residual solvent signals.
Figure 9Structures of the X− ⊂ Naph-urea complexes after QM optimization (orthogonal views). The atomic species are represented in CPK colours, except carbons that are in green.
B3LYP/6-31G(d.p) + BG3BJ complexation energies ∆E (in kJ.mol−1) for the guest-host complexes.
| ∆ | ||
|---|---|---|
| Host |
|
|
| F− | −498.9 | −557.1 |
| Cl− | −202.5 | −219.0 |
| AcO− | −261.5 | −291.4 |
| BzO− | −232.1 | −283.3 |
| HSO4− | −192.3 | −206.2 |
| H2PO4− | −220.6 | −236.6 |
| −736.3 | −811.6 | |
| −656.5 | −709.5 | |
| ( | −704.1 | — |
| ( | −712.4 | — |
| ( | −691.1 | — |
| ( | −695.4 | — |
Figure 10Structures of the R-NH3+ ⊂ calix ⊃ Cl− complexes after QM optimization (orthogonal views). The atomic species are represented in CPK colours, except carbons that are in green.