| Literature DB >> 23727768 |
Yong Xie1, Ting-Ting Wang, Xiao-Huan Liu, Kun Zou, Wei-Qiao Deng.
Abstract
Conjugated micro<Entities:
Year: 2013 PMID: 23727768 PMCID: PMC3709476 DOI: 10.1038/ncomms2960
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Synthesis of Co-CMP (Method A) and Al-CMP (Method B).
Full experimental details and characterization are provided in the Supplementary Methods.
Figure 2Computer-modelled structure and NMR spectrum of Co-CMP.
(a) Three-dimensional view of Co-CMP in an amorphous periodic cell. (b) Solid-state 1H–13C CP/MAS NMR spectrum of Co-CMP recorded at a spinning speed of 10 kHz.
Figure 3Morphological structures of Co-CMP and Al-CMP.
SEM images of the microporous conjugated polymers Co-CMP (a) and Al-CMP (c) (scale bar, 500 nm). High-resolution transmission electron microscope (HR-TEM) images of Co-CMP (b) and Al-CMP (d) (scale bar, 2 nm).
Figure 4Gas uptake data for conjugated microporous polymers.
(a) N2 adsorption and desorption isotherms for CMP (blue triangles), Co-CMP (black squares) and Al-CMP (red circles) at 77.3 K. (b) CO2 sorption and desorption isotherms for CMP (blue triangles), Co-CMP (black squares) and Al-CMP (red circles) at 298 K.
Physical properties for conjugated microporous polymers.
| CMP | 772 | 283 | 1.21 | 0.117 | 0 | 0 | 71.0 |
| Co-CMP | 965 | 293 | 2.81 | 0.419 | 8.20 | 7.19 | 79.3 |
| Al-CMP | 798 | 315 | 1.41 | 0.298 | 4.01 | 3.46 | 76.5 |
Further details are provided in Fig. 4b and Supplementary Fig. S4.
*Brunauer–Emmett–Teller (BET) surface area calculated over the pressure range (P/P0) 0.05–0.3.
†Micropore surface area calculated from the N2 adsorption isotherm using the t-plot method.
‡Total pore volume at P/P0=0.99.
§Micropore volume calculated using the t-plot method.
||Data calculated based on each monomer unit.
¶Data obtained with inductively coupled plasma-optical emission spectroscopy (ICP–OES).
#Volumetric CO2 adsorption–desorption isotherms measured for Co-CMP and Al-CMP at 298 K.
Influence of experimental conditions on propylene carbonate yields.*
| 1 | Salen-Co-OAc 81.0 | 1.8 | 0.1 | 25 | 48 | 77.1 | 158 |
| 2 | Co-CMP 100 | 0 | 0.1 | 25 | 48 | 6.7 | 14 |
| 3 | Co-CMP 0 | 1.8 | 0.1 | 25 | 48 | 20.4 | 3 |
| 4 | Co-CMP 100 | 1.8 | 0.1 | 25 | 48 | 81.5 | 167 |
| 5 | Al-CMP 95.2 | 1.8 | 0.1 | 25 | 48 | 78.2 | 160 |
| 6 | KI 20.3 | 0 | 0.1 | 25 | 48 | 3.8 | 8 |
| 7 | KI/β-CD 20.3+138 | 0 | 0.1 | 25 | 48 | 3.9 | 8 |
| 8 | Salen-Co-OAc 81.0 | 1.8 | 3.0 | 100 | 1 | 84.6 | 173 |
| 9 | Co-CMP 0 | 1.8 | 3.0 | 100 | 1 | 31.0 | 4 |
| 10 | Co-CMP 100 | 1.8 | 3.0 | 100 | 1 | 98.1 | 201 |
| 11 | Al-CMP 95.2 | 1.8 | 3.0 | 100 | 1 | 91.2 | 187 |
| 12 | Co-CMP 100(O2) | 1.8 | 3.0 | 100 | 1 | 96.0 | 197 |
| 13 | Co-CMP 100(H2O) | 1.8 | 3.0 | 100 | 1 | 94.1 | 193 |
| 14 | Al-CMP 95.2(H2O) | 1.8 | 3.0 | 100 | 1 | 72.9 | 149 |
| 15 | KI 20.3 | 0 | 3.0 | 100 | 1 | 3.0 | 6# |
| 16 | KI/β-CD 20.3+138 | 0 | 3.0 | 100 | 1 | 13.2 | 27# |
All reactions were conducted in the absence of additional solvent unless otherwise noted.
*Reaction conditions: propylene oxide (25 mmol), Co-CMP (100 mg, Co: 0.122 mmol) or Al-CMP (95.2 mg, Al: 0.122 mmol) or Salen-Co-OAc (81.0 mg, Co: 0.122 mmol) or KI (20.3 mg, 0.122 mmol), unless otherwise noted.
†Initial pressure.
‡Yield of the isolated product obtained after column chromatography.
§TON=(moles of product)/(moles of metal in the catalyst), unless otherwise noted.
||Co-CMP was replaced with Salen-Co-OAc in the catalytic reaction. Salen-Co-OAc=[(R, R)-N′N′-bis(5-bromo-3-tert-butyl-salicylidene)-1,2-cyclohexanediaminate] cobalt (III) acetate.
¶TON=(moles of product)/(moles of TBAB in the catalyst).
#TON=(moles of product)/(moles of KI in the catalyst).
**Not excluding the air inside the reaction system.
††0.2 ml of H2O was added to the reaction system.
‡‡β-CD (β-cyclodextrin) (0.122 mmol, 138 mg) was added.
Figure 5The catalytic activity of various catalytic systems and the recycling of Co-CMP.
(a) The yield (PC) depending on reaction time at atmospheric pressure and room temperature. (b) The recycling stability of Co-CMP under various experimental conditions.