| Literature DB >> 31963434 |
Yuna Wang1,2, Xiaofeng Zhang1,2, Yanru Zhao1,2, Suoshu Zhang1,2, Shifen Li1,2, Lei Jia1,2, Lin Du1,2, Qihua Zhao1,2.
Abstract
Three novelEntities:
Keywords: 4-methoxyisophthalic acid; coordination polymers; ethanol; ion detection
Year: 2020 PMID: 31963434 PMCID: PMC7024230 DOI: 10.3390/molecules25020382
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1(a) Coordination environment of compound 1, [Zn(MIPA)]n. (b) 1D metal chain of 1. The a, b and c represent a axis, b axis and c axis, respectively. (c) The 2D layers of 1. (d) The π···π interaction between layers. All hydrogen atoms and guest molecules are omitted for clarity. Symmetry codes: (1) x, 0.5 − y, −0.5 + z, (2) 0.5 + x, y, 0.5 − z.
Scheme 1Coordination modes of an MIPA (4-methoxyisophthalic acid) ligand.
Figure 2The coordination environment of Zn1. All hydrogen atoms and guest molecules are omitted for clarity. Symmetry code: (1) x, 1 − y, 0.5 + z.
Figure 3(a) The 2D layer of compound 2, {[Zn(MIPA)(4,4′-bipy)0.5(H2O)]·1.5H2O}n. The a, b and c represent a axis, b axis and c axis, respectively. (b) The corresponding node-and-linker diagram of the 2D layers in 2. (c) The interpenetrating structure of 2. (d) The corresponding node-and-linker diagram of structures interspersed between 2D layers in 2.
Figure 4(a) The coordination environment of Zn1. (b) The left-handed and right-handed chains of compound 3, {[Zn(MIPA)(bpe)]·H2O}n. The a, b and c represent a axis, b axis and c axis, respectively. (c) The 3D supramolecular architecture of 3. (d) The four-connected net of 3. All hydrogen atoms and guest molecules are omitted for clarity. Symmetry code: (1) x, −y + 1/2, −z + 1/2.
Figure 5Thermogravimetric curves of the three compounds.
Figure 6(a) Fluorescence spectra of compounds 1–3 in the solid state. (b) Fluorescence spectra of compound 2 in different solvents.
Figure 7(a) Fluorescence spectra of the ligand in ethanol. (b) Luminescence intensities of 2 in different metal cations.
Figure 8(a) Luminescence intensities of 2 in different concentrations of Al3+ ions. (b) Linear relation between Al3+ ions and I/I0 − 1.
Figure 9Luminescence intensities of 2 responding to interfering ions in the course of detecting Al3+ ions.
Figure 10Luminescence intensities of 2 in different anions.
Figure 11(a) Luminescence intensities of 2 in different concentrations of S2− ions. (b) Linear relation between S2− ions and I/I0 − 1.
Figure 12Luminescence intensities of 2 responding to interfering ions in the course of detecting S2− ions.
Crystallographic data and structural parameters of compounds 1–3.
| Compound | 1 | 2 | 3 |
|---|---|---|---|
| Empirical formula | C9H6O5Zn | C14H15ZnNO7.5 | C21H17ZnN2O6 |
| Formula weight | 259.51 | 382.64 | 458.75 |
| Crystal system | Orthorhombic | Monoclinic | Orthorhombic |
| Space group |
|
| |
| 6.9761 (17) | 18.346 (3) | 7.996 (2) | |
| 14.443 (4) | 12.2149 (16) | 17.355 (5) | |
| 17.319 (4) | 16.850 (3) | 15.110 (4) | |
| 90.00 | 90.00 | 90.00 | |
| 90.00 | 121.911(2) | 90.00 | |
| γ/° | 90.00 | 90.00 | 90.00 |
| Volume/Å3 | 1745.0(8) | 3205.26 | 2096.8(10) |
|
| 8 | 8 | 8 |
| 1.976 | 1.586 | 1.453 | |
| 2.810 | 1.571 | 1.211 | |
| 1040.0 | 1568.0 | 940.0 | |
| Independent reflections | 2090 | 3772 | 2543 |
| Rint | 0.1138 | 0.0405 | 0.0494 |
| Goodness-of-fit on | 0.954 | 1.024 | 1.036 |
| 0.0508, 0.1046 | 0.0450, 0.1255 | 0.0553, 0.1621 | |
| 0.1393, 0.1339 | 0.0776, 0.1421 | 0.1039, 0.1863 | |
| Δρmax/Δρmin (e Å−3) | 1.43/−0.74 | 0.5/−0.65 | 0.42/−0.5 |
1R1 = Σ ||Fo| − |Fc||/Σ |Fo|; [b] wR2(F2) = [Σ w(Fo2 − Fc2)2/Σ w(Fo2)2]1/2.