| Literature DB >> 21915208 |
Oksana Shvydkiv1, Kieran Nolan, Michael Oelgemöller.
Abstract
A series of 4,4'-dimethoxybenzophenone mediated intra- and intermolecular photodecarboxylation reactions involvingEntities:
Keywords: microflow; microreactor; photochemistry; photodecarboxylation; phthalimide
Year: 2011 PMID: 21915208 PMCID: PMC3170193 DOI: 10.3762/bjoc.7.121
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1General photodecarboxylation involving phthalimides (the broken line indicates intra- as well as intermolecular reactions).
Figure 1Microreactor (dwell device, mikroglas chemtech) under a UV exposure panel (Luzchem) and connected to a syringe pump.
Figure 2UV-spectrum of DMBP (in MeCN) versus emission spectrum of the UVA lamp. The vertical dotted line represents the cut-off wavelength of Foturan™ and Pyrex at 300 nm (approx. 30% transmission).
Figure 3Light-penetration profile for a 1.5 mM solution of DMBP at 350 nm. The vertical lines represent the path length in the dwell device (vertical dashed line) versus the effective path length in the Schlenk flask (vertical dotted line).
Scheme 2DMBP mediated α-photodecarboxylation of N-phthaloylglycine (1).
Scheme 3Photodecarboxylation of potassium phthaloyl-γ-aminobutyrate (3).
Experimental results for the photodecarboxylation of 3.
| batch | μ-reactor | |
| time [h] | 1 | 1 |
| 87/13 | 81/19 | |
| yield | 29 | 47 |
aDetermined by 1H NMR analysis of the crude product. bIsolated yield after column chromatography.
Scheme 4Photodecarboxylative cyclization of potassium phthalimidomethylsulfanylacetate (6).
Scheme 5Photodecarboxylative benzylation of 2.
Experimental results for the photobenzylation of 2.
| batch | μ-reactor | |
| time [h] | 1 | 1 |
| conversion [%]a | 98 | 96 |
| ( | >10/1 | >10/1 |
aDetermined by 1H NMR analysis of the crude product.
Scheme 6Photodecarboxylative addition of 11 to 2.
Experimental results for the photodecarboxylative addition of 11 to 2.
| batch | μ-reactor | |
| time [h] | 1 | 1 |
| conversion [%]a | 100 | 90 |
| 90/10 | 100/0 | |
| yield | 41 | n.d.c |
aDetermined by 1H NMR analysis of the crude product. bIsolated yield after column chromatography. cYield not determined.
Scheme 7Photodecarboxylative addition of 11 to DMBP.
Technical details of the two reactor types.
| Parameter | batcha | μ-reactor |
| aperture [cm2]b | 85 / 274 | 86.1 |
| irradiated area [cm2] | 85 / 274 | 23.0 |
| irradiated volume [cm3] | 50 / 100 | 1.7 |
| irradiated area/volume ratio [m2/m3] | 171 / 274 | 1369 |
| lamp power [W] | 16 × 8 | 5 × 8 |
| lamp power/aperture [W/cm2] | 1.5 / 0.5 | 0.46 |
| lamp power/irradiated area [W/cm2] | 1.5 / 0.5 | 1.74 |
aValues given for 50 mL and 100 mL flask volumes. bAssuming a cylindrical geometry for the Schlenk flask.
Energy efficiencies of the two reactor types.
| Reaction | batcha | μ-reactora | ||
| [% Wh−1] | [% Wh−1 cm−2] | [% Wh−1] | [% Wh−1 cm−2] | |
| ≥0.78b | ≥0.0028b | ≥2.5b | ≥0.11b | |
| 0.23 | 0.0027 | 1.18 | 0.05 | |
| 0.45 | 0.0052 | 1.40 | 0.06 | |
| 0.77 | 0.0028 | 2.40 | 0.10 | |
| ≥0.78b | ≥0.0028b | 2.25 | 0.09 | |
aBatch: 128 Wh; microreactor: 40 Wh. bMinimum values due to possible “over-irradiation”. cBased on isolated yield of 4 or 7.
Scheme 8Mechanistic scenario (the broken line indicates intra- and intermolecular reactions).