| Literature DB >> 22983149 |
Kai-Sheng Diao1, Long Li, Yu-Qiu Ding, Fu-Hou Lei.
Abstract
Assembly of 4,4'-oxybis(benzoic acid) (H(2)L) with manganese chloride in the presence of 2,2'-biphenyl (2,2'-bpy) affords a new coordination polymer [Mn(3)L(3)(2,2'-bpy)(2)](n) (1), in which the [MnL(2)]n layers are extended by L bridges resulting in a three-dimensional (3-D) coordination framework. The network structure of 1 has unusual (2,6)-connectivity and represents a new type of (8(12) · 12(3))(8)(3) topology. These identical and complementary networks are entangled to generate a self-penetrating supramolecular lattice. Moreover, the fluorescence spectrum of 1 exhibits fluorescent emission in the solution of methanol at room temperature. Electrochemical investigation illustrates the electrochemical properties of the title compound. The structure (C(62)H(40)Mn(3)N(4)O(15))(n) is monoclinic with a = 14.2304(18), b = 17.019(2), c = 25.805(3) Å, α = γ = 90, β = 92.932(2)° and space group C2/c.Entities:
Mesh:
Substances:
Year: 2012 PMID: 22983149 PMCID: PMC6268809 DOI: 10.3390/molecules170911103
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1The coordination environment of 1. All H atoms are omitted for clarity.
Figure 2The π-π stacking interactions of 1. All H atoms are omitted for clarity.
Figure 3(a) Thermal ellipsoid-and-stick representation of SBU; (b) Each SBU as a 6-connected node bridged by L ligands to connected with other six SBU nodes; (c) A schematic view of the (2,6)-connected (812·123)(8)(3) topology of a 3-D coordination network in 1 (green: SBU; red: L ligand).
Figure 4View of the big cavity in the 3-D coordination network.
Figure 5View of the [(SBU)L4]n coordination layer along (a) the a axis and (b) the c axis.
Figure 6View of the 3-D coordination topology network created by the coordination layer and the L ligand.
Figure 7Simulated and experimental XRPD patterns for complex 1.
Figure 8Fluorescence emission spectra of complex 1 in the solution of methanol (λex = 312, λem = 328).
Figure 9Cyclic voltammograms of complex 1 measured at room temperature.
Experimental data for complex 1.
| Empirical formula | C62H40Mn3N4O15 |
|---|---|
| Temperature (K) | 1245.80 |
| Wavelength (Å) | 296(2) |
| Crystal system | 0.71073 |
| space group | Monoclinic |
| a (Å) | C2/c |
| b (Å) | 14.230(4) |
| c (Å) | 17.019(2) |
| α (°) | 25.805(3) |
| β (°) | 90 |
| γ (°) | 92.932(2) |
| V (Å3) | 90 |
| Z | 6241.5(9) |
| Dc (Mg/m3) | 4 |
| µ (mm−1) | 1.326 |
| F (000) | 0.664 |
| Crystal size (mm) | 2540 |
| θ range | 0.35 × 0.34 × 0.32 |
| Reflections collected | 1.87–25.00 |
| Independent reflections | 5493 |
| Completeness to θ = 25.00 | 5493 [R(int) = 0.0012] |
| Absorption correction | 0.999 |
| Max. and min. transmission | Multi-scan |
| Data/restraints/parameters | 0.8156 and 0.8008 |
| Goodness-of-fit on F | 5493/0/381 |
| R indices [I > 2σ(I)] | 1.07 |
| R indices (all data) | R1 = 0.0288, wR2 = 0.0732 |
The selected bond lenths (Å) and angles (°) for complex 1.
| Mn(1)-O(8) 2.0740(13) | O(1)#3-Mn(2)-O(5)#2 93.51(5) |
|---|---|
| Mn(1)-O(2)#1 2.0820(13) | O(5)-Mn(2)-O(5)#2 180.0 |
| Mn(1)-O(4) 2.1794(13) | O(4)-Mn(1)-N(2) 90.99(6) |
| Mn(1)-N(1) 2.2612(15) | N(1)-Mn(1)-N(2) 71.66(6) |
| Mn(1)-N(2) 2.2625(17) | O(8)-Mn(1)-O(5) 93.82(5) |
| Mn(1)-O(5) 2.4032(12) | O(2)#1-Mn(1)-O(5) 105.45(5) |
| Mn(2)-O(7) 2.1782(12) | O(4)-Mn(1)-O(5) 56.89(4) |
| Mn(2)-O(7)#2 2.1782(12) | N(1)-Mn(1)-O(5) 148.94(5) |
| Mn(2)-O(1)#1 2.1801(12) | N(2)-Mn(1)-O(5) 91.70(6) |
| Mn(2)-O(1)#3 2.1801(12) | O(7)-Mn(2)-O(7)#2 180.00(6) |
| Mn(2)-O(5)#2.2451(12) | O(7)-Mn(2)-O(1)#1 90.51(5) |
| Mn(2)-O(5)#2 2.2451(12) | O(7)#2-Mn(2)-O(1)#1 89.49(5) |
| O(1)-Mn(2)#4 2.1801(12) | O(7)-Mn(2)-O(1)#3 89.49(5) |
| O(2)-Mn(1)#5 2.0821(13) | O(7)#2-Mn(2)-O(1)#3 90.51(5) |
| O(8)-Mn(1)-O(2)#1 92.42(6) | O(1)#1-Mn(2)-O(1)#3 180.0 |
| O(8)-Mn(1)-O(4) 150.68(5) | O(7)-Mn(2)-O(5) 87.41(5) |
| O(2)#1-Mn(1)-O(4) 96.77(6) | O(7)#2-Mn(2)-O(5) 92.59(5) |
| O(8)-Mn(1)-N(1) 111.11(6) | O(1)#1-Mn(2)-O(5) 93.51(5) |
| O(2)#1-Mn(1)-N(1) 92.13(5) | O(1)#3-Mn(2)-O(5) 86.49(5) |
| O(4)-Mn(1)-N(1) 96.35(5) | O(7)-Mn(2)-O(5)#2 92.59(5) |
| O(8)-Mn(1)-N(2) 88.19(6) | O(7)#2-Mn(2)-O(5)#2 87.41(5) |
| O(2)#1-Mn(1)-N(2) 162.76(6) | O(1)#1-Mn(2)-O(5)#2 86.49(5) |
Symmetry codes: #1 x,−y,z+1/2; #2 −x+3/2,−y+1/2,−z+1; #3 −x+3/2,y+1/2,−z+1/2; #4 −x+3/2,y−1/2,−z+1/2; #5 x,−y,z−1/2; #6 −x+2,y,−z+1/2.