| Literature DB >> 24566303 |
Rosa I Y Quiroz-Segoviano1, Iris N Serratos1, Fernando Rojas-González1, Salvador R Tello-Solís1, Rebeca Sosa-Fonseca2, Obdulia Medina-Juárez1, Carmina Menchaca-Campos3, Miguel A García-Sánchez4.
Abstract
A sol-gel methodology has been duly developed in order to perform a controlled covalent coupling of tetrapyrrole macrocycles (e.g.,Entities:
Mesh:
Substances:
Year: 2014 PMID: 24566303 PMCID: PMC6271852 DOI: 10.3390/molecules19022261
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1(a) Structure and peripheral positions of atoms in a porphin macrocycle (H2P) and (b) chemical structure of 5, 10, 15,20-meso-tetrakisphenylporphyrin (H2TPP).
Figure 2Absorption spectra in solution (organic or acidic media) of the (a) H2T(o-NH2)PP in methanol and (b) H2T(p-COOH)PP species in ethanol. (c) Fluorescence spectra of the same species in organic solution and with λex = 370 nm. All spectra are taken at 25 °C.
Scheme 1Synthesis route for the obtainment H2P-FA precursorsfrom H2T(p-COOH)PP and H2T(o-NH2)PP species and the following functionalized alkoxides: (a) APTES, (b) NAEPTES and (c) IPTES.
Scheme 2Synthesis route for the covalent union between substituted tetraphenylporphyrin metal-free bases and the pore surface of xerogel networks of organo-modified silica. H2P-APTES represents the precursory species and R is an alkyl or aryl group arising from the use of organosubstituted alkoxides.
Figure 3Absorption spectra of the H2T(p-COOH)PP species covalently bonded, through the use of (a) APTES or (b) NAEPTES, to the pore walls of silica modified with organic groups coming from the use of 1% v/Vf of OSA.
Figure 4(a) Fluorescence spectra (λexc = 420 nm) of the H2T(p-COOH)PP species covalently bonded, through the use of APTES or (b) NAEPTES, to the pore walls of silica organically modified with groups resulting from the use of 1% v/Vf of OSA.
Figure 5HPDEC 29Si-RMN spectra of the xerogels with the H2T(p-COOH)PP species covalently bonded, through the use of NAEPTES, to the pore walls of silica organically modified with organic groups coming from the use of 1% v/Vf of OSA.
Figure 6SEM image and carbon (C) and nitrogen (N) EDS mapping of the xerogel with the H2T(p-COOH)PP species bonded using NAEPTES as a bridges and inside pores of silica modified with dodecyl groups.
Figure 7Pore-size distribution (PSD) calculated by assuming spherical pore cavities, from the N2 adsorption isotherms of organo-modified silica xerogel networks with H2T(p-COOH)PP species covalently bonded to the pore walls through the linking action of (a) APTES or (b) NAEPTES.
Specific Surface areas and average pore widths (Φ) of organo-modified silica xerogels in which H2T(p-COOH)PP species are covalently bonded through the use of APTES or NAEPTES.
| APTES | NAEPTES | |||||
|---|---|---|---|---|---|---|
| sample | Specific Surface Area (m2/g) | Pore Volume (cm3/g) | Average pore diameter, Φ (nm) | Specific Surface Area (m2/g) | Pore Volume (cm3/g) | Average pore diameter, Φ (nm) |
| Blank-a | 544.0 | 0.331 | 3.43 ± 1.01 | |||
| Blank-b | 686.3 | 0.430 | 3.34 ± 0.81 | |||
| Blank-c | 643.9 | 0.37 | 3.02 ± 0.70 | |||
| dMeDEOS | 700.4 | 0.380 | 2.77 ± 0.65 | 703.3 | 0.37 | 2.68 ± 0.52 |
| EtTEOS | 775.1 | 0.425 | 2.81 ± 0.64 | 763.6 | 0.44 | 3.43 ± 1.01 |
| VyTEOS | 623.9 | 0.353 | 2.33 ± 0.88 | 634.4 | 0.34 | 2.80 ± 0.60 |
| AllyTMOS | 668.0 | 0.360 | 2.75 ± 0.56 | 662.7 | 0.36 | 2.75 ± 0.60 |
| AmTEOS | 804.3 | 0.539 | 3.47 ± 1.28 | 751.8 | 0.48 | 3.35 ± 1.12 |
| DoTEOS | 745.7 | 0.530 | 3.73 ± 1.74 | 619.5 | 0.34 | 2.89 ± 0.69 |
| Φ-TEOS | 675.7 | 0.400 | 2.96 ± 0.81 | 657.4 | 0.33 | 2.61 ± 0.45 |
Blank-a included neither porphyrin nor OSA compounds. Blank-b and blank-c samples were synthesized without OSA compound and bonding the porphyrin by using APTES or NAEPTES, respectively. ± define the standard deviation determined from the pore widths distributions.
Figure 8Hypothetical structure of a pore cavity containing the H2T(p-COOH)PP species covalently bonded, through the use of NAEPTES to the pore walls of silica modified with (a) dodecyl groups (Do) or (b) through the use of APTES and modified with phenyl groups (Φ).
Figure 9(a) Absorption spectra of H2T(o-NH2)PP species covalently bonded to the pore walls of silica modified with organic groups and the respective fluorescence spectra resulting from using excitation light of (b) 420 nm and (c) 370 nm.
Figure 10Hypothetical structure of a pore containing the H2T(o-NH2)PP species covalently bonded through the use of IPTES to the pore walls of silica modified with allyl groups.