1977
DOI: 10.1021/ar50109a002
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Free-radical rearrangements in telomerization

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Cited by 45 publications
(11 citation statements)
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References 35 publications
(10 reference statements)
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“…In previous research dealing with the electrochemical reductions of 6-bromo-and 6-iodo-1-phenyl-1-hexyne [11], 1-bromo-and 1-iododecane [27], and 1,10-dibromo-and 1,10-diiododecane [28] in DMF, gas chromatography-mass spectrometry indicated that mixtures of telomers (of relatively high molar mass) are formed via attack of solvent-derived radicals on olefinic electrolysis products, and a similar conclusion was reached inferentially concerning the reduction of 1-bromo-and 1-iodo-5-decyne [12,13]. As pointed out by Freidlina and TerentÕev [29], any olefinic compound can play the part of a monomer in telomerization. Therefore, telomers could be produced via reactions of 3 or 4 with solvent-derived radicals, although no supporting experimental evidence has yet been acquired.…”
Section: Controlled-potential Electrolysis Of Ethyl 2-bromo-3-(3 0 ; supporting
confidence: 59%
“…In previous research dealing with the electrochemical reductions of 6-bromo-and 6-iodo-1-phenyl-1-hexyne [11], 1-bromo-and 1-iododecane [27], and 1,10-dibromo-and 1,10-diiododecane [28] in DMF, gas chromatography-mass spectrometry indicated that mixtures of telomers (of relatively high molar mass) are formed via attack of solvent-derived radicals on olefinic electrolysis products, and a similar conclusion was reached inferentially concerning the reduction of 1-bromo-and 1-iodo-5-decyne [12,13]. As pointed out by Freidlina and TerentÕev [29], any olefinic compound can play the part of a monomer in telomerization. Therefore, telomers could be produced via reactions of 3 or 4 with solvent-derived radicals, although no supporting experimental evidence has yet been acquired.…”
Section: Controlled-potential Electrolysis Of Ethyl 2-bromo-3-(3 0 ; supporting
confidence: 59%
“…The process constitutes a sigmatropic shift allowed by orbital symmetry rules~Lowry & Richardson, 1981!. In pot chemistry, the H shifts characteristic of radicals are mostly 1,5-shifts because the steric requirements dominate the energetic requirements~Heusler & Kalvoda, 1963;Wilt, 1973;Freidlina & Terent'ev, 1977;March, 1992!. However, 1,4-shifts are found when 1,5-shifts are less easily accessible, for example, across a ring system~Fisch & Ourisson, 1965;!, and even 1,3-shifts~but no 1,2-shifts! have been reported~Freidlina & Terent'ev, 1977!.…”
Section: Switches Between Cation and Radical Mechanismsmentioning
confidence: 99%
“…kc&. would not be the k, of [3] but instead, kc* = k,h,/(k, + A_,). Detailed comparison of kc& for the present homopropargyl radical rearrangement with rate constants for homoallyl and homobenzyl radical rearrangements could then be misleading since the latter have no stereoelectronic constraint against direct ring opening of the cyclic radical intermediate in the thermodynamically favoured direction.…”
Section: Resultsmentioning
confidence: 99%
“…the intramolecular addition step in the overall rearrangement of 4 is expected to lead to radical 5a in preference to 5b,' eq. [3].…”
Section: Resultsmentioning
confidence: 99%
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