• Title/Summary/Keyword: Nucleophilicity

Search Result 68, Processing Time 0.03 seconds

Solvent Effects on the Solvolysis of 2-Aryl-1,1-dimethylethyl Bromides

  • 황영호;김성홍;지종기;여수동
    • Bulletin of the Korean Chemical Society
    • /
    • v.19 no.3
    • /
    • pp.349-353
    • /
    • 1998
  • Solvolysis rates of substituted 2-aryl-1,1-dimethylethyl bromides (1) were determined in a variety of solvents such as aqueous mixtures of ethanol, acetone, 2,2,2-trifluoroethanol, and also mixtures of ethanol and TFE at 25 ℃, 35 ℃, and 45 ℃. The solvent effects were analyzed in terms of Winstein-Grunwald equation. The solvent effects of 1-4-MeO failed to give a single linear correlation against either Y or YCl (YBr), but exhibited a wide split pattern which could not be related to the solvent nucleophilicity. On the other hand 1-4-CH3 and 1-H gave a fairly good linearity. In the case of 1-4-MeO, a fairly good linearity was observed against YΔ defined from the solvolysis of 4-methoxyneophyl tosylate. It is assumed that resonance interaction between reaction site and aryl-π-system operates to give charge delocalization regardless of the different solvolysis mechanisms. The Hammett-Brown treatment of the solvolytic rate constant of compounds 1 was obtained non-linear two separated lines of - 1.06 to - 1.46, suggesting of mechanistic changeover from kc-ks to kΔ on going from electron-withdrawing to electron-donating substituents as a basis of 4-CH3 group.

Correlation of the Rates of Solvolyses of Cinnamyl Bromide

  • Koo, In-Sun;Cho, Jun-Mi;An, Sun-Kyoung;Yang, Ki-Yull;Lee, Jong-Pal;Lee, I.
    • Bulletin of the Korean Chemical Society
    • /
    • v.24 no.4
    • /
    • pp.431-436
    • /
    • 2003
  • Solvolytic rate constants at 25℃ are reported for solvolyses of cinnamyl bromide (1) in binary mixtures of water with acetone, ethanol, methanol, methanol-d, and 2,2,2-trifluoroethanol. Product selectivities are reported for solvolyses of 1 in aqueous ethanol and methanol. Rate ratios in solvents of the same $Y_{Br}$ value and different nucleophilicity provide measures of the minimum extent of nucleophilic solvent assistance (e.g. $[k_{40EW}/k_{97TFE}]$Y = 2.88, EW = ethanol-water). With use of the extended Grunwald-Winstein equation, the l and m values are similar to the values of 0.43 and 0.88 obtained for the solvolyses of 1 using the equation (see below) which includes a parameter (I) for solvation of aromatic rings. The magnitude of l and m values associated with a change of solvent composition predicts the $S_{N1}$ reaction mechanism rather than an $S_{N2}$ channel. Product selectivities (S), defined by S = [ether product]/[alcohol product]×[water]/[alcohol solvent] are related to four rate constants for reactions involving one molecule of solvent as nucleophile and another molecule of solvent as general base catalyst. A linear relationship between 1/S and molar ratio of solvent is derived theoretically and validated experimentally for solvolyses of the above substrates from water up 75% 1/S = $(k_{wa}/k_{aw})$([alcohol solvent]/[water]) + $k_{ww}/k_{aw}$ alcohol-water. The results are best explained by product formation from a “free” carbocation intermediate rather than from a solvent-separated ion pair.

Rate-Product Correlations for the Solvolysis of 5-Nitro-2-Furoyl Chloride

  • Choi, Ho-June;Koh, Han-Joong;Ali, Dildar;Yang, Ki-Yull;Koo, In-Sun
    • Bulletin of the Korean Chemical Society
    • /
    • v.33 no.10
    • /
    • pp.3293-3297
    • /
    • 2012
  • The solvolysis rate constants of 5-nitro-2-furoyl chloride (5-$NO_2(C_4H_2O)$-2-COCl, 1) in 27 different solvents are well correlated with the extended Grunwald-Winstein equation, using the $N_T$ solvent nucleophilicity scale and YCl solvent ionizing scale, with sensitivity values of $1.20{\pm}0.05$ and $0.37{\pm}0.02$ for l and m, respectively. The activation enthalpies (${\Delta}H^{\neq}$) were 5.63 to $13.0kcal{\cdot}mol^{-1}$ and the activation entropies (${\Delta}S^{\neq}$) were -25.9 to $-43.4cal{\cdot}mol^{-1}{\cdot}K^{-1}$, which is consistent with the proposed bimolecular reaction mechanism. The solvent kinetic isotope effect (SKIE, $k_{MeOH}/k_{MeOD}$) of 2.65 was also in accord with the $S_N2$ mechanism and was possibly assisted using a general-base catalysis. The product selectivity (S) for solvolysis of 1 in alcohol/water mixtures was 1.2 to 11, which is also consistent with the proposed bimolecular reaction mechanism.

Distinction between the Influence of Dielectric Constant and of Methanol Concentration on Trypsin-Catalyzed Hydrolysis and Methanolysis

  • Park, Hyun;Chi, Young-Min
    • Journal of Microbiology and Biotechnology
    • /
    • v.8 no.6
    • /
    • pp.656-662
    • /
    • 1998
  • To make a distinction between the influence of the dielectric constant and of methanol concentration on trypsin-catalyzed hydrolysis and methanolysis at $0^{\circ}C$, a model reaction of $N^u$-benzyloxycarbonyl-L-lysine p-nitrophenyl ester with water-methanol mixtures was chosen and a kinetic study done. The $k_{cat}$ values increased with methanol concentration, in a linear manner whereas $K_{M}$ values increased in a log-linear fashion. However, the $k_{cat},$_{M}$ ratio increased at lower methanol concentrations than 30% and then began to decrease at higher concentrations. The decrease in $k_{catK_M}$observed at higher than 30% methanol concentrations is attributed to the hydrophobic partitioning effect on substrate binding. On the other hand, the increase in $k_{catK_M}$ in the 0~30% methanol concentration range seems to be due to the effect of nucleophilic cosolvent on $k_{cat}$ and of the dielectric constant on $k_m$. This explanation was verified by measuring the effect of varying the dielectric constant of the medium on kinetic constants with isopropyl alcohol chemically unrelated to the enzyme reaction as the methanol concentration is maintained at a constant level. Therefore, we conclude that the effect of increasing the methanol concentration in the model reaction on the kinetic parameters $k_{cat \;and\;{K_M}}$ is caused by changes in both the nucleophilicity and the dielectric constant of the medium. Based on product analysis, the increase in $k_4, k_3$by decreasing the temperature can be accounted for by the suppression of hydrolytic reactions. This observation indicates that the nucleophile is favored by low temperatures. There was no loss of trypsin activity over a 10 h period in 60% methanol concentration at $pH^*\; 5.5,\; 0^{\circ}C$.EX>.

  • PDF

A Study on Electrostatic Potentials and Chemical Reactivities of Energetic Oxetanes (고에너지 함유 옥세탄류의 정전기 전위 및 화학 반응성 연구)

  • Cheun, Young-Gu;Cho, Soo Gyeong
    • Journal of the Korean Chemical Society
    • /
    • v.39 no.5
    • /
    • pp.329-337
    • /
    • 1995
  • Energetic oxetane derivatives which undergo cationic polymerizations have been investigated theoretically by using ab initio HF/3-21G calculations. We have examined structures, charges, and molecular electrostatic potentials. The ring structure of oxetane has changed significantly due to (1) the introduction of large substituents in the ring or (2) the addition of either proton or BF3. This structural change is attributed to electrostatic interactions and/or steric repulsions. The nucleophilicity and basicity of oxetane derivatives can be explained by the negative charge and the minimum electrostatic potential value of O atom. The reactivity in the polymerization can be rationalized by (1) the basicity of O atom and (2) the difference between HOMO energy of oxetanes and LUMO energy of activated oxetane polymeric chains. Our calculations predict that 3-azidomethyl-3-methyl oxetane (AMMO) is more basic than 3-nitratomethyl-3-methyl oxetane (NMMO), and AMMO is more reactive toward both AMMO and NMMO polymeric chains. Our results are in good agreement with previous experimental data.

  • PDF

Theoretical Studies on The Cationic Polymerization Mechanism of Oxetanes (산촉매하의 옥세탄 공중합에 관한 분자 궤도론적 연구)

  • Cheun, Young-Gu;Kim, Joon-Tae;Park, Seong-Kyu
    • Journal of the Korean Chemical Society
    • /
    • v.35 no.6
    • /
    • pp.636-644
    • /
    • 1991
  • The cationic polymerization of substituted oxethanes which have pendant energetic groups such as methoxy, azido, and nitrato are investigated theoretically using the semiempirical MINDO/3, MNDO, and AM1 methods. The nucleophilicity and basicity of substituted oxethanes can be explained by the negative charge on oxygen atom of oxetanes. The reactivity of propagation in the polymerization of oxetanes can be represented by the positive charge on carbon atom and the low LUMO energy of active species of oxetanes. The reaction of the energetic cyclic oxonium ion forms to the open chain carbenium ion forms is expected by computational stability energy of the oxonium and carbenium ion (about 10~20 kcal/mole) favoring the carbenium ion. The relative equilibrium concentration of cyclic oxonium and open carbenium ions is found to be a major determinant of mechanism, owing to the rapid equilibrium of these cation forms and the expectation based on clauclation that the prepolymer propagation step SN1 mechanism will be at least as fast as that for SN2 mechanism.

  • PDF

Theoretical Studies on the Cationic Polymerization Mechanism of Oxiranes (산촉매하의 옥시란 공중합에 관한 분자궤도론적 연구)

  • Young-Gu Cheun
    • Journal of the Korean Chemical Society
    • /
    • v.35 no.5
    • /
    • pp.461-468
    • /
    • 1991
  • The cationic polymerizations of substituted oxiranes which have pendant energetic groups such as azido, and nitrato, are investigated theoretically using the semiempirical MNDO, and $AM_1$ methods. The nucleophilicity and basicity of substituted oxiranes can be explained by the negative charge on oxygen atom of oxiranes. The reactivity of propagation in the polymerization of oxiranes can be represented by the positive charge on carbon atom and the low LUMO energy of active species of oxiranes. Ring opening of the complexed cyclic oxonium ion to the open chain carbenium ion is expected computational stability of the oxonium and carbenium ion by 30∼40 kcal/mol favoring the carbenium ion. The relative equilibrium concentration of cyclic oxonium and open carbenium ions will be a major determinant of mechanism. The chain growth $SN_1$, mechanism will be at least as fast as that for $SN_2$ mechanism.

  • PDF

A Study Based on Molecular Orbital Theory of Polymerization of Oxolane High Explosives (Oxolane 고폭 화약류의 중합반응에 관한 분자 궤도론적 연구)

  • Kim, Joon-Tae
    • Applied Chemistry for Engineering
    • /
    • v.21 no.3
    • /
    • pp.278-283
    • /
    • 2010
  • The cationic polymerization of oxolane high explosives which have pendant explosive groups such as azido, nitrato and hydrazino is investigated theoretically using the semiempirical MINDO/3, MNDO and AM1 methods. The nucleophilicity and basicity of oxolane high explosives can be explained by the negative charge on oxygen atom of oxolane. The reactivity of propagation in the polymerization of oxolane can be represented by the positive charge on carbon atom and the low LUMO energy of active species of oxolane. The reaction of the oxolane high explosives in oxonium ion form to the open chain carbenium ion form is expected by computational stability energy (17.950~30.197 kcal/mol) of the oxonium ion and carbenium ion favoring the carbenium ion. The relative equilibrium concentration of cyclic oxonium ion and carbenium ion is found to be a major determinant of mechanism, owing to the rapid equilibrium of these catoinic forms. Based on calculation, in the prepolymer propagation step, $S_N1$ mechanism will be at least as fast as that for $S_N2$ mechanism.

Product-Rate Correlations for Solvolyses of 2,4-Dimethoxybenzenesulfonyl Chloride

  • Kim, Soo Ryeon;Choi, Hojune;Park, Jong Keun;Koo, In Sun;Koh, Han Joong
    • Bulletin of the Korean Chemical Society
    • /
    • v.35 no.1
    • /
    • pp.51-56
    • /
    • 2014
  • The solvolysis rate constants of 2,4-dimethoxybenzenesulfonyl chloride (1) in 30 different solvents are well correlated with the extended Grunwald-Winstein equation, using the $N_T$ solvent nucleophilicity scale and $Y_{Cl}$ solvent ionizing scale, with sensitivity values of $0.93{\pm}0.14$ and $0.65{\pm}0.06$ for l and m, respectively. These l and m values can be considered to support a $S_N2$ reaction pathway. The activation enthalpies (${\Delta}H^{\neq}$) were 12.4 to $14.6kcal{\cdot}mol^{-1}$ and the activation entropies (${\Delta}S^{\neq}$) were -15.5 to -$32.3kcal{\cdot}mol^{-1}{\cdot}K^{-1}$, which is consistent with the proposed bimolecular reaction mechanism. The solvent kinetic isotope effects (SKIE) were 1.74 to 1.86, which is also in accord with the $S_N2$ mechanism and was possibly assisted using a general-base catalysis. The values of product selectivity (S) for solvolyses of 1 in alcohol/water mixtures was 0.57 to 6.5, which is also consistent with the proposed bimolecular reaction mechanism. Third-order rate constants, $k_{ww}$ and $k_{aa}$, were calculated from the rate constants ($k_{obs}$), together with $k_{aw}$ and $k_{wa}$ calculated from the intercept and slope of the plot of 1/S vs. [water]/[alcohol]. The calculated rate constants, $k_{calc}$ ($k_{ww}$, $k_{aw}$, $k_{wa}$ and $k_{aa}$), are in satisfactory agreement with the experimental values, supporting the stoichiometric solvation effect analysis.

Theoretical Studies on the Cationic Polymerization Mechanism of Cyclic Acetals (산 촉매하의 Cyclic Acetals 공중합반응에 관한 분자궤도론적 연구)

  • Young-Gu Cheun;Jae-Kyung Kim
    • Journal of the Korean Chemical Society
    • /
    • v.36 no.2
    • /
    • pp.197-204
    • /
    • 1992
  • The cationic polymerization of cyclic acetals are investigated theoretically using the semiempirical MINDO/3, MNDO, and $AM_1$, methods. The nucleophilicity and basicity of cyclic acetals can be explained by the negative charge on oxygen atom of cyclic acetals. The reactivity of propagation in the polymerization of cyclic acetals can be represented by the positive charge on $C_2$ atom and the low LUMO energy of active species of cyclic acetals. The reactivity of 2-buthyl-1,3-dioxepane(2-Bu-DOP) of cyclic oxonium and opening carbenium ion form is expected computational stability of the oxonium ion by 5${\sim}$7kcal/mole favoring the carbenium ion. Owing to the rapid equilibrium of these cation forms and the reaction coordinate based on calculation that the reaction coordinate based on calculation that the chain growth $S_N1$ mechanism will be at least as fast as that for $S_N2$ mechanism.

  • PDF