| Literature DB >> 30310631 |
Yanhui Wang1, Maria Nikolopoulou1, Emilie Delahaye1, Cédric Leuvrey1, Fabrice Leroux2, Pierre Rabu1, Guillaume Rogez1.
Abstract
Microwave-assisted functionalization of the layered Aurivillius phase Bi2SrTa2O9 byEntities:
Year: 2018 PMID: 30310631 PMCID: PMC6137446 DOI: 10.1039/c8sc01754a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Typical grafting reactions into layered perovskites
| Phase | Protonated form | Intermediate | Organic phase | Solvent | Method |
|
| Ref. |
| Dion–Jacobson | HLaNb2O7 (HLN) | ∅ | Methanol | Water added | Stirring | R.T. | 1 d |
|
| ∅ | Ethanol | Water added | Stirring | R.T. | 7 d |
| ||
| ∅ |
| Water added | Classical heating | 80 °C | 7 d |
| ||
|
| 2-Propanol, ethylene glycol | Water added | Solvothermal | 80 °C | 7 d |
| ||
|
|
| Water added | Solvothermal | 80 °C | 14 d |
| ||
|
|
| 2-Butanone + 1% water | Classical heating | 80 °C | 2–3 d |
| ||
|
|
| ∅ | Classical heating | 80 °C | 14 d |
| ||
|
| CF3(CF2)7C2H4OH | 2-Butanone + 1% water | Classical heating | 80 °C | 7 d |
| ||
|
|
| 2-Butanone + 10% water | Solvothermal | 70 °C | 3 d |
| ||
| Propoxyl-HLN | CF3COOH | ∅ | Solvothermal | 70 °C | 3 d |
| ||
| Propoxyl-HLN | 4-Penten-1-ol | ∅ | Solvothermal | 80 °C | 7 d |
| ||
| ∅ | Methanol or propanol | Water added | Microwave | 100 °C | 1 h |
| ||
| Methoxyl-HCN |
| Water added | Microwave | 100 °C | 1 h |
| ||
| Methoxyl-HCN or propoxyl-HCN |
| Water added | Microwave | 120 °C | 1 h |
| ||
| Methoxyl-HCN or propoxyl-HCN |
| Water added | Microwave | 150 °C | 0.5 h |
| ||
| HCa2Nb3O10 (HCaN) | ∅ | Methanol or ethanol | Water added | Solvothermal | 150 °C | 7 d |
| |
| Methoxyl-HCaN |
| Water added | Solvothermal | 150 °C | 7 d |
| ||
| Propoxyl-HCaN |
| Water added | Solvothermal | 150 °C | 7 d |
| ||
| HSr2Nb3O10 (HSN) | ∅ | Methanol | Water added | Microwave | Not-mentioned | 4 h |
| |
| Methoxyl-HSN |
| Water added | Microwave | Not-mentioned | 4 h |
| ||
| Propoxyl-HSN |
| Water added | Microwave | Not-mentioned | 3.5 h |
| ||
| Ruddlesden–Popper | H2CaTa2O7 (HCT) | Methylamine-HCT | Methanol | Water added | Solvothermal | 100 °C | 3 d |
|
| Methoxyl-HCT |
| Water added | Solvothermal | 80 °C | 7 d |
| ||
| Propoxyl-HCT |
| Water added | Solvothermal | 80 °C | 7 d |
| ||
|
|
| 2-Butanone + 10% water | Solvothermal | 70 °C | 3 d |
| ||
| Propylamine-HCT |
| Water added | Microwave | 110 °C | 1 h |
| ||
| Propoxyl-HCT |
| ∅ | Microwave | 120 °C | 1 h |
| ||
| H2La2Ti3O10 (HLT) |
|
| Water added | Solvothermal | 180 °C | 5 d |
| |
| Propoxyl-HLT |
| Water added | Solvothermal | 150 °C | 5 d |
| ||
| Aurivillius | H2Bi0.1Sr0.85Ta2O7 (HST) | Ethylamine-HST | Ethanol | Water added | Microwave | 130 °C | 2 h |
|
| Ethoxyl-HST | 4-Pentyn-1-ol | Water added | Microwave | 110 °C | 2 h |
|
Fig. 1(a) PXRD patterns of the starting material C and its reaction products with n-alcohols (COH, n = 1, 2, 3, 4, 7, 12). (b) Left: Relationship between the number of carbon atoms in the aliphatic chain of n-alcohols and the interlayer distance of the corresponding grafted products (full line corresponds to the best linear fit). Right: Scheme of the bilayer arrangement of the mono-n-alkoxy-HST derivatives. (c) Corresponding IR spectra.
Positions of the IR absorption bands of the CH2, CH3, C–O and Ta–O groups in C compounds
| Product |
|
|
|
|
|
|
| 2919 | 1147 | 591, 524 | ||
|
| 2926 | 2869 | 2968 | 1143 | 576 |
|
| 2933 | 2871 | 2960 | 1140 | 565 |
|
| 2931 | 2869 | 2957 | 1139 | 573 |
|
| 2919 | 2851 | 2955 | 1150 | 568 |
|
| 2916 | 2848 | 2957 | 1144 | 579 |
Fig. 2Solid-state 13C CP/MAS NMR spectra of C (red) and C (cyan).
Scheme 1Scheme of the general synthetic procedure.
Fig. 3Left: PXRD patterns of C and its reaction products with propan-2-ol, tert-butanol and benzyl alcohol. Right: As an example, proposition of arrangement of benzyl alcohol.
Fig. 4(a) PXRD patterns of the starting material C and its reaction products with α,ω-alkanediols (HOCH2OH, n = 2, 3, 4, 7, 8, 9, 12). (b) Left: Relation between the number of carbon atoms in the aliphatic chain of α, ω-alkanediols and the interlayer distance of the corresponding grafted products (full line corresponds to the best linear fit for the longer diols (see text)). Right: Schemes of the pillaring arrangement of α, ω-alkanediols with long alkyl chains (top) and of the bilayer arrangement of ethyleneglycol or of 1,3-propanediol. (c) IR spectra of ethylene glycol, 1,3-propanediol, 1,4-butanediol, C, C and C.
Fig. 5Solid-state 13C CP/MAS NMR spectra of C (green), C (blue) and of C (cyan).
Fig. 6PXRD patterns of HST and its reaction products with an equimolar mixture of butylamine and ethanol and 0 mass%, 0.1 mass% and 1 mass% of distilled water.
Fig. 7Solid-state 13C CP/MAS NMR spectra of the products resulting from the reaction between HST and an equimolar mixture of butylamine and ethanol and 0.1 mass% (red) and 1 mass% (black) of distilled water.
Fig. 8Left: XRD patterns of C and its reaction products with 5-amino-1-pentanol using different quantities of water. Right: Scheme of the pillaring arrangement (bottom), and of the bilayer arrangement (top).
Fig. 9Solid-state 13C CP/MAS NMR spectra of the products resulting from the reaction between HST and 5-amino-pentan-1-ol with 1 mass% (red), 2 mass% (green) and 100 mass% (blue) of distilled water.
Fig. 10XRD patterns of 5-amino-pentan-1-ol-HST “bilayer” and of the products obtained after heating.
Fig. 11Solid-state 13C CP/MAS NMR spectra of 5-amino-pentan-1-ol-HST “bilayer” (red) and the product obtained after heating (cyan).