| Literature DB >> 19330098 |
Zoon Ha Ryu1, Sang Wok Lee1, Malcolm J D'Souza2, Lamia Yaakoubd2, Samantha E Feld2, Dennis N Kevill3.
Abstract
Additional specific rates of solvolysis have been determined, mainly in fluoroalcohol containing solvents, for benzenesulfonyl chloride (1) and p-nitrobenzene-sulfonyl chloride (2). For trans-beta-styrenesulfonyl chloride (3), a study has been carried out in 43 pure and binary solvents, covering a wide range of hyroxylic solvent systems. For the specific rates of solvolyses of each of the three substrates, a good correlation was obtained over the full range of solvents when the extended Grunwald-Winstein equation was applied. The sensitivities to changes in solvent nucleophilicity and solvent ionizing power are similar to values determined earlier and an S(N)2 process is proposed. For 3, kinetic solvent isotope effects of 1.46 for k(H(2)O)/k(D(2)O) and 1.76 for k(MeOH)/k(MeOD) were determined. These are also compared to literature values for other sulfonyl chlorides.Entities:
Keywords: Grunwald-Winstein equation; Linear Free Energy Relationships; Solvolysis; benzenesulfonyl chloride; general base catalysis; kinetic solvent isotope effect; para-nitrobenzenesulfonyl chloride; sulfonyl transfer; trans-β-styrenesulfonyl chloride
Year: 2008 PMID: 19330098 PMCID: PMC2635650 DOI: 10.3390/ijms9122639
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 6.208
Scheme 1Formation of a sulfene intermediate from substrates having a hydrogen plus electron-withdrawing groups on the α-carbon.
Scheme 2Solvolysis-decomposition pathway for tert-butylsulfonyl chloride.
Scheme 3Solvolysis for benzenesulfonyl chloride (1), p-nitrobenzenesulfonyl chloride (2), and trans-β-styrenesulfonyl chloride [(E)-2-phenylethenesulfonyl chloride] (3).
Specific rates of solvolysis (k) of benzenesulfonyl chloride (1) and p–nitrobenzenesulfonyl chloride (2) in pure and binary solvents at 35.0 ºC and the solvent nucleophilicity (NT) and solvent ionizing power (YCl) values for the solvents.
| Solvent (%) | 1; 105 | 2; 105 | ||
|---|---|---|---|---|
| 100% EtOH | 3.60±0.34 | (10.7) | 0.37 | −2.52 |
| 90% EtOH | 13.6±0.6 | (83.9) | 0.16 | −0.94 |
| 80% EtOH | 19.6±1.1 | 117±5 | 0.00 | 0.00 |
| 70% EtOH | 32.4±1.2 | (221) | −0.20 | 0.78 |
| 60% EtOH | (285) | −0.39 | 1.38 | |
| 100% H2O | (751) | (759) | −1.38 | 4.57 |
| 100% MeOH | 15.1±0.8 | 21.8±1.4 | 0.17 | −1.17 |
| 90% MeOH | 27.9±1.4 | −0.01 | −0.18 | |
| 80% MeOH | 20.1±0.8 | −0.06 | 0.67 | |
| 70% MeOH | 27.6±0.9 | −0.40 | 1.46 | |
| 90% Acetone | 16.9±0.7 | −0.35 | −2.39 | |
| 87% Acetone | (23.3) | −0.34 | −1.81 | |
| 80% Acetone | 3.64±0.20 | 65.7±2.9 | −0.37 | −0.83 |
| 75% Acetone | (5.57) | (72.1) | −0.39 | −0.28 |
| 63% Acetone | (14.0) | (135) | −0.54 | 0.62 |
| 52% Acetone | (27.9) | (219) | −0.68 | 1.45 |
| 42% Acetone | (62.5) | (414) | −0.81 | 2.21 |
| 34% Dioxane | (216) | (686) | −0.92 | 2.75 |
| 18% Dioxane | (419) | (844) | −1.13 | 3.76 |
| 10% Dioxane | (592) | (786) | −1.23 | 4.23 |
| 100% TFE | 0.0247±0.0011 | −3.93 | 2.81 | |
| 97% TFE (w/w) | (0.0774) | 0.0450±0.0018 | −3.30 | 2.83 |
| 90% TFE (w/w) | 0.562±0.021 | −2.55 | 2.85 | |
| 80% TFE (w/w) | 2.57±0.09 | −2.19 | 2.90 | |
| 70% TFE (w/w) | 5.48±0.22 | −1.98 | 2.96 | |
| 50% TFE (w/w) | 19.0±0.5 | −1.73 | 3.16 | |
| 80T-20E | 1.70±0.05 | −1.76 | 1.89 | |
| 60T-40E | 3.33±0.08 | −0.94 | 0.63 | |
| 50T-50E | 3.88±0.18 | −0.64 | 0.16 | |
| 40T-60E | 5.48±0.21 | (7.61) | −0.34 | −0.48 |
| 30T-70E | (9.84) | −0.11 | −0.95 | |
| 20T-80E | 4.73±0.10 | (10.5) | 0.08 | −1.42 |
| 97% HFIP(w/w) | 0.0196±0.0011 | −5.26 | 5.17 | |
| 70% HFIP(w/w) | 2.40±0.06 | −2.94 | 3.83 | |
| 50% HFIP(w/w) | 7.52±0.22 | −2.49 | 3.80 |
On volume-volume basis at 25.0 ºC, except when indicated as weight-weight (w/w) basis.
With associated standard deviations; values in parentheses are obtained (directly or by an Arrhenius treatment of specific rates) from the literature, as indicated.
From ref. [7].
From refs. [3, 38, 39].
These values are 20-35% lower than values reported in ref. [37].
From ref. [37].
From Arrhenius treatment of values in ref. [36].
Calculated using the activation parameters reported in ref. [28].
A value of 825 is calculated from the rate data of ref. [10].
These values are calculated from specific rates reported in ref. [35].
Obtained by interpolation.
Estimated from values in ref. [22].
Arrhenius equation treatment of specific rates in ref. [22] leads to a value of 0.0411.
Figure 2.The plot of log (k/k) vs. (1.26 N + 0.65 Y) for the solvolyses of benzene-sulfonyl chloride (1) in pure and binary solvents at 35.0 ºC.
Figure 3.The plot of log (k/k) vs. (1.54 N + 0.69 Y) for the solvolyses of p-nitro-benzenesulfonyl chloride (2) in pure and binary solvents at 35.0 ºC. Four acetone-water points (90% - 75%) were not included in the correlation but are added to show the extent of their deviations from the plot.
Specific rates of solvolysis (k) of trans-β-styrenesulfonyl chloride (3) in pure ethanol, methanol, and water, and in alcohol-water binary mixtures at 45.0 ºC.
| Solvent | n | |||
|---|---|---|---|---|
| 100 EtOH | (2.18±0.03)×10−4 | 3 | 0.37 | −2.52 |
| 90 EtOH | (5.40±0.01)×10−4 | 1 | 0.16 | −0.94 |
| 80 EtOH | (8.83±0.02)×10−4 | 1 | 0.00 | 0.00 |
| 70 EtOH | (1.20±0.01)×10−3 | 1 | −0.20 | 0.78 |
| 60 EtOH | (1.76±0.01)×10−3 | 1 | −0.38 | 1.38 |
| 50 EtOH | (2.40±0.01)×10−3 | 1 | −0.58 | 2.02 |
| 40 EtOH | (3.95±0.02)×10−3 | 1 | −0.74 | 2.75 |
| 30 EtOH | (6.35±0.01)×10−3 | 1 | −0.93 | 3.53 |
| 20 EtOH | (8.23±0.03)×10−3 | 1 | −1.16 | 4.09 |
| 10 EtOH | (1.07±0.07)×10−2 | 4 | −1.31 | 4.40 |
| H2O | (1.21±0.05)×10−2 | 6 | −1.38 | 4.57 |
| D2O | (8.28±0.20)×10−3 | 5 | ||
| 100 MeOH | (6.33±0.08)×10−4 | 5 | 0.17 | −1.17 |
| 100 MeOD | (3.59±0.08)×10−4 | 4 | ||
| 90 MeOH | (1.44±0.01)×10−3 | 1 | −0.01 | −0.18 |
| 80 MeOH | (2.43±0.01)×10−3 | 3 | −0.06 | 0.67 |
| 70 MeOH | (3.61±0.01)×10−3 | 1 | −0.40 | 1.46 |
| 60 MeOH | (5.12±0.01)×10−3 | 1 | −0.54 | 2.07 |
| 50 MeOH | (7.04±0.01)×10−3 | 1 | −0.57 | 2.70 |
| 40 MeOH | (9.43±0.01)×10−3 | 3 | −0.87 | 3.25 |
| 30 MeOH | (1.10±0.01)×10−2 | 1 | −1.06 | 3.73 |
| 20 MeOH | (1.29±0.01)×10−2 | 1 | −1.23 | 4.10 |
| 10 MeOH | (1.31±0.01)×10−2 | 1 | −1.36 | 4.39 |
Determined conductimetrically and typically injected 4 μL of 3% (w/w) substrate in dry acetonitrile into the kinetic apparatus containing 2 mL of solvent (concentration of ca. 2.4 × 10−4 mol dm−3); errors accompanying the specific rates are standard deviations.
Percentage by volume at 25.0 ºC of organic component (v/v%).
Number of runs.
From listings in ref.[7] for NT and in refs. [3, 38, 39] for YCl.
Injected 4 μL of 1.0% (w/w) substrate in dry acetonitrile (concentration of ca. 8 × 10−5 mol dm−3).
Injected 4 μL of 0.5% (w/w) substrate in dry acetonitrile (concentration of ca. 4 × 10−5 mol dm−3).
Kinetic Solvent Isotope Effect (KSIE), kH/kD = 1.46 (±0.02) at 45.0 ºC (average from five paired values).
KSIE, kMeOH/kMeOD = 1.76 (±0.02) at 45.0 ºC (average from four paired values).
Specific rates of solvolysis (k) of trans-β-styrenesulfonyl chloride (3) in aqueous acetone and aqueous dioxane at 45.0 ºC.
| Solvent | n | |||
|---|---|---|---|---|
| 90 Acetone | (2.12±0.01)×10−5 | 1 | −0.35 | −2.39 |
| 80 Acetone | (8.53±0.01)×10−5 | 1 | −0.37 | −0.83 |
| 70 Acetone | (2.10±0.01)×10−4 | 1 | −0.42 | 0.17 |
| 60 Acetone | (4.33±0.05)×10−4 | 1 | −0.48 | 0.95 |
| 50 Acetone | (9.14±0.01)×10−4 | 1 | −0.52 | 1.73 |
| 40 Acetone | (1.74±0.02)×10−3 | 1 | −0.70 | 2.46 |
| 30 Acetone | (3.29±0.01)×10−3 | 1 | −0.83 | 3.21 |
| 20 Acetone | (5.36±0.01)×10−3 | 1 | −0.96 | 3.77 |
| 10 Acetone | (9.01±0.06)×10−3 | 3 | 1.23 | 4.28 |
| 80 Dioxane | (7.58±0.01)×10−5 | 1 | −0.46 | |
| 50 Dioxane | (1.13±0.01)×10−3 | 1 | −0.66 | |
| 30 Dioxane | (3.75±0.04)×10−3 | 1 | −0.98 | 2.97 |
See footnotes to Table 2.
From ref. [40].
From ref. [41].
From ref. [18].
Specific rates of solvolysis (k) of trans-β-styrenesulfonyl chloride (3) in binary mixtures of water with 2, 2, 2-trifluoroethanol (TFE) and 1, 1, 1, 3, 3, 3-hexafluoro-2-propanol (HFIP) and in TFE-ethanol (T-E) mixtures at 45.0 ºC.
| Solvent | n | |||
|---|---|---|---|---|
| 97 TFE | (4.67±0.01)×10−6 | 1 | −3.30 | 2.83 |
| 90 TFE | (2.22±0.01)×10−5 | 1 | −2.55 | 2.85 |
| 80 TFE | (6.53±0.01)×10−5 | 1 | −2.19 | 2.90 |
| 70 TFE | (1.57±0.01)×10−4 | 1 | −1.98 | 2.96 |
| 50 TFE | (5.12±0.07)×10−4 | 2 | −1.73 | 3.16 |
| 90 HFIP | (8.33±0.02)×10−6 | 1 | −3.84 | 4.31 |
| 70 HFIP | (1.06±0.01)×10−4 | 1 | −2.94 | 3.83 |
| 50 HFIP | (2.61±0.01)×10−4 | 1 | −2.49 | 3.80 |
| 80T-20E | (5.18±0.02)×10−5 | 1 | −1.76 | 1.89 |
| 60T-40E | (1.21±0.01)×10−4 | 1 | −0.94 | 0.63 |
| 50T-50E | (1.53±0.01)×10−4 | 2 | −0.64 | 0.16 |
| 40T-60E | (1.89±0.01)×10−4 | 1 | −0.34 | −0.48 |
| 20T-80E | (1.97±0.02)×10−4 | 2 | 0.08 | −1.42 |
See footnote a in Table 2.
Unless otherwise stated, percentage by weight of organic component (w/w%).
Number of runs.
See footnote d in Table 2.
Ratio specific rates, (k40EtOH/k97TFE), in 40 EtOH and 97TFE = 846.
From ref. [38].
Percentages by volume at 25.0 °C.
Figure 4.The plot of log (k/k) vs. (1.24 N + 0.58 Y) for the solvolyses of trans-β-styrenesulfonyl chloride (3) in pure and binary solvents at 45.0 ºC.
Specific rates (k/s−1) of solvolysis for trans-β-Styrenesulfonyl Chloride at temperature other than 45.0 ºC and activation parameters.
| Solvent | T, ºC | ΔH≠298/(kcal/mol) | ΔS≠298/(cal/mol K) | |
|---|---|---|---|---|
| 100 EtOH | 25 | (2.72±0.02)×10−5 | 19.0±0.2 | −15.9±0.8 |
| 35 | (8.32±0.01)×10−5 | |||
| 55 | (5.64±0.01)×10−4 | |||
| 80 EtOH | 25 | (1.47±0.03)×10−4 | 16.0±0.3 | −22.3±1.0 |
| 35 | (3.51±0.01)×10−4 | |||
| 55 | (1.88±0.03)×10−3 | |||
| 30 EtOH | 25 | (1.25±0.04)×10−3 | 14.3±0.2 | −23.8±0.9 |
| 35 | (2.94±0.01)×10−3 | |||
| 55 | (1.25±0.04)×10−2 | |||
| 100 MeOH | 25 | (1.14±0.01)×10−4 | 14.9±0.5 | −26.6±1.6 |
| 35 | (2.67±0.01)×10−4 | |||
| 55 | (1.22±0.01)×10−3 | |||
| 70 MeOH | 25 | (6.84±0.01)×10−4 | 15.0±0.1 | −22.7±0.4 |
| 35 | (1.65±0.04)×10−3 | |||
| 55 | (7.66±0.04)×10−3 | |||
| 50 HFIP | 25 | (3.65±0.02)×10−5 | 17.9±0.2 | −18.8±0.8 |
| 35 | (9.61±0.01)×10−5 | |||
| 55 | (6.27±0.01)×10−4 | |||
| 80 Acetone | 25 | (1.77±0.01)×10−5 | 14.0±0.4 | −33.4±1.4 |
| 35 | (4.30±0.02)×10−5 | |||
| 55 | (1.71±0.01)×10−4 | |||
| 80 Dioxane | 25 | (1.52±0.01)×10−4 | 14.8±0.3 | −31.0±0.9 |
| 35 | (3.35±0.03)×10−5 | |||
| 55 | (1.63±0.01)×10−4 | |||
| 30 Dioxane | 25 | (4.98±0.01)×10−4 | 17.9±0.3 | −13.4±0.9 |
| 35 | (1.41±0.01)×10−3 | |||
| 55 | (8.66±0.01)×10−3 |
Obtained from an Eyring plot and using also the specific rate at 45.0 ºC from Table 2, 3, or 4; with associated standard errors.
Correlation of the specific rates of solvolytic nucleophilic displacement at the sulfur of sulfonyl chlorides using the extended Grunwald-Winstein equation (equation 2)
| Substrate | T ºC | n | ||||||
|---|---|---|---|---|---|---|---|---|
| 35.0 | 29 | 1.26±0.05 | 0.65±0.03 | 0.13±0.05 | 0.979 | 304 | 1.94 | |
| 35.0 | 23 | 1.44±0.11 | 0.57±0.06 | 0.20±0.11 | 0.945 | 83 | 2.53 | |
| 21 | 1.52±0.09 | 0.66±0.05 | 0.10±0.09 | 0.968 | 134 | 2.30 | ||
| 19 | 1.54±0.08 | 0.69±0.04 | 0.01±0.08 | 0.981 | 209 | 2.23 | ||
| 45.0 | 43 | 1.24±0.04 | 0.58±0.02 | 0.07±0.04 | 0.982 | 542 | 2.14 | |
| 25.0 | 38 | 1.07±0.08 | 0.60±0.03 | 0.22±0.06 | 0.967 | 254 | 1.78 | |
| 25.0 | 34 | 1.19±0.07 | 0.61±0.02 | 0.20±0.05 | 0.975 | 305 | 1.95 | |
| 3,4- diMeOC6H3SO2Cl | 25.0 | 40 | 1.24±0.07 | 0.64±0.03 | 0.14±0.06 | 0.967 | 264 | 1.94 |
| MeSO2Cl | 45.0 | 39 | 1.17±0.04 | 0.49±0.02 | 0.23±0.05 | 0.981 | 454 | 2.39 |
| 45.0 | 19 | 1.28±0.05 | 0.64±0.03 | 0.18±0.06 | 0.988 | 333 | 2.00 | |
| C6H5CH2SO2Cl | 45.0 | 25 | 0.80±0.06 | 0.39±0.04 | 0.21±0.06 | 0.947 | 95 | 2.05 |
| (CH3) 2NSO2Cl | 25.0 | 32 | 1.20±0.04 | 0.72±0.03 | 0.11±0.04 | 0.985 | 478 | 1.67 |
| 2-thiopheneSO2Cl | 25.0 | 34 | 1.35±0.05 | 0.70±0.02 | 0.28±0.05 | 0.983 | 455 | 1.93 |
Number of data points.
With associated standard error.
Multiple correlation coefficient.
F-test value.
Omitting 90% and 87% acetone.
Omitting 90-75% acetone.
From tabulation in ref. [45]; where appropriate, references to earlier sources are given in this reference.
The kinetic solvent isotope effect (KSIE) for solvolyses in methanol and methanol-d (kMeOH/kMeOD) and the ratios of specific rates for solvolyses in 40% (v/v) ethanol-water relative to 97% (w/w) TFE-water.
| Substrate | ||
|---|---|---|
| 1.79 (25º) | 2900 (25º) | |
| 2.31 (25º) | 15000 (25º) | |
| 1.76 (45°) | 846 (45°) | |
| 4-MeOC6H4SO2Cl | 1.58 (25º) | 300 (25º) |
| 4-MeC6H4SO2Cl | 1.72 (25º) | 450 (25º) |
| MeSO2Cl | 1.62 (25º); 1.51 (35º) | 2010 (45º) |
| 2.54 (25º); 2.41 (35º) | 2790 (45º) | |
| (CH3)2NSO2Cl | 359 (25º) | |
| 4-MeO-2,6- diMeC6H2SO2Cl | 1.58 (25º) | 89 (25º) |
| 2,4,6-triMeC6H2SO2Cl | 1.68 (25º) | 202 (25º) |
| 3,4-diMeOC6H3SO2Cl | 1.45 (25º) | 386 (25º) |
Solvents with similar YCl but very different NT values.
Values from ref. [19].
Values from ref. [22]; references for values determined elsewhere are given.
Values from ref. [48].
Value for 40% EtOH from ref. [48] and value for 97% TFE from ref. [50].
Values from ref. [49].
Values from ref. [21], value for 40% EtOH of 108 × 10−6 s−1 obtained by interpolation.
Value for 40% EtOH of 733 × 10−6 s−1 obtained from Arrhenius plots of data in ref. [25] and value for 97% TFE from ref. [21].
Values from ref. [29].
Values from ref. [18].
Values from ref. [31].
Scheme 4Substitution being assisted by general base catalysis.