Literature DB >> 25815076

Switching the reaction pathways of electrochemically generated β-haloalkoxysulfonium ions - synthesis of halohydrins and epoxides.

Akihiro Shimizu1, Ryutaro Hayashi1, Yosuke Ashikari1, Toshiki Nokami1, Jun-Ichi Yoshida1.   

Abstract

β-Haloalkoxysulfonium ions generated by the reaction of electrogenerated Br(+) and I(+) ions stabilized by dimethyl sulfoxide (DMSO) reacted with sodium hydroxide and sodium methoxide to give the corresponding halohydrins and epoxides, respectively, whereas the treatment with triethylamine gave α-halocarbonyl compounds.

Entities:  

Keywords:  DMSO; electrosynthesis; epoxides; halogen cations; halohydrins

Year:  2015        PMID: 25815076      PMCID: PMC4362321          DOI: 10.3762/bjoc.11.27

Source DB:  PubMed          Journal:  Beilstein J Org Chem        ISSN: 1860-5397            Impact factor:   2.883


Introduction

Alkene difunctionalization through three-membered ring halonium ion intermediates [1] is an important transformation in organic synthesis. Usually the halonium ions such as bromonium or iodonium ions are generated by the reaction of alkenes with Br2 and I2 [2]. However, the most straightforward method is the reaction of alkenes with halogen cations such as Br+ and I+. The I+ cation pool exists as reported by Filimonov et al. [3], although the used solvent is concentrated sulfuric acid which is therefore not compatible with most organic compounds. Electrochemical oxidation [4-11] is a potent technique to generate and accumulate highly reactive cationic species in solution (the “cation pool” method) [12-17]. Although halogen cations are too unstable to accumulate in solution as “cation pools”, halogen cations stabilized by an appropriate stabilizing agent that coordinates the cations can be accumulated in the solution. For example, “I+” cations stabilized by acetonitrile (CH3CN) [18-20] or by trimethyl orthoformate (TMOF) [21] were reported in the literature. Recently, we reported that dimethyl sulfoxide (DMSO) can also be used to effectively stabilize halogen cations (Scheme 1) [22].
Scheme 1

Synthesis of halohydrins and epoxides through β-haloalkoxysulfonium ions generated by the reaction of alkenes with DMSO-stabilized halogen cations.

Synthesis of halohydrins and epoxides through β-haloalkoxysulfonium ions generated by the reaction of alkenes with DMSO-stabilized halogen cations. The pools of stabilized halogen cations enable alkene difunctionalization. We previously reported that the reaction of alkenes with DMSO-stabilized halogen cations such as Br+ and I+ gave β-haloalkoxysulfonium ions and their subsequent treatment with triethylamine gave α-halocarbonyl compounds through Swern–Moffatt-type oxidation [23-27]. Recently reaction integration [28-31] has received significant research interest because it enhances the power and speed of organic syntheses and this is an example of integration of an electrochemical reaction and a chemical reaction using a reactive intermediate. Herein, we report that the reaction pathways of β-haloalkoxysulfonium ions can be switched to give different products by changing the base, thus expanding the utility of the present method. The treatment of β-haloalkoxysulfonium ions 3-X with sodium hydroxide gave the corresponding halohydrins 5-X, while the treatment with sodium methoxide gave epoxides 6 (Scheme 1).

Results and Discussion

Reactions of β-bromoalkoxysulfonium ions generated from (Z)-5-decene

We first examined the reactions of β-bromoalkoxysulfonium ion 3a-Br generated by the reaction of (Z)-5-decene (2a) with Br+/DMSO (1-Br) [21] (Scheme 1, X = Br). Bu4NBr in DMSO/CH2Cl2 (1:9 v/v) was electrochemically oxidized at −78 °C in a divided cell using Bu4NBF4 as a supporting electrolyte until 2.1 F/mol of electricity was applied. After addition of 2a to the solution, the mixture was stirred at 0 °C to give 3a-Br, which was characterized by NMR spectroscopy [22]. The treatment of 3a-Br with triethylamine gave α-bromoketone 4a-Br in 83% yield [22]. However, the treatment of 3a-Br with NaOH gave bromohydrin 5a-Br in 89% yield as shown in Table 1. These phenomena can be explained as follows: Due to the steric repulsion, triethylamine cannot attack the sulfur atom in 3a-Br and acts as base to abstract a proton attached to the carbon adjacent to the sulfur. The formed carbanion part of the resulting sulfur ylide abstracts a proton attached to the carbon adjacent to the oxygen to give α-bromoketone 4a-Br by the Swern–Moffatt-type oxidation mechanism [23-27]. On the other hand, the hydroxide ion attacks the sulfur atom in 3a-Br and cleaves the S–O bond to give the alkoxide ion, which is protonated by water to give bromohydrin 5a-Br (Scheme 2). The stereochemistry determined by NMR (5a-Br was synthesized using NBS according to the literature; see Supporting Information File 1) indicated that the addition of Br+ and DMSO across the CC double bond was anti-selective, which is consistent with the results reported previously [22].
Table 1

Reaction of 3a-X (X = Br, I) with different bases.a


% Yield of productb
X = BrX = I


Base4a-Br5a-Br6a4a-Ir5a-I6a

Et3N/CH2Cl283NDND85ND1
NaOH/H2OND892ND841
NaOMe/MeOHNDND95NDND96

aThe electrolysis was carried out using 1.3 equiv of Bu4NBr or Bu4NI (based on the alkene which was added after electrolysis) with 2.1 F/mol of electricity based on Bu4NBr or Bu4NI. bYields were determined by GC.

Scheme 2

Proposed reaction mechanisms for the syntheses of bromohydrin 5a-Br and epoxide 6a.

Reaction of 3a-X (X = Br, I) with different bases.a aThe electrolysis was carried out using 1.3 equiv of Bu4NBr or Bu4NI (based on the alkene which was added after electrolysis) with 2.1 F/mol of electricity based on Bu4NBr or Bu4NI. bYields were determined by GC. Proposed reaction mechanisms for the syntheses of bromohydrin 5a-Br and epoxide 6a. Treatment of 3a-Br with NaOMe resulted in a different product, namely epoxide 6a in 95% yield. In this case, the methoxide ion attacks the sulfur atom and cleaves the S–O bond under formation of an alkoxide ion. The latter intramolecularly attacks the carbon atom bearing the bromine substituent to give epoxide 6a (Scheme 2). Presumably, the protonation of the alkoxide ion with MeOH is slower than the intramolecular nucleophilic attack. We could not exclude the possibility that a protonated DMSO molecule presumably generated by the reaction of 3a-Br with the hydroxide ion protonates the alkoxide ion to give 5a-Br, while a methylated DMSO molecule presumably generated by the reaction of 3a-Br with the methoxide ion cannot protonate the alkoxide ion, which converts to 6a. The stereochemistry determined by NMR [32] is consistent with a mechanism involving the back-side attack of the alkoxide ion to form epoxide 6a.

Reactions of β-iodoalkoxysulfonium ions generated from (Z)-5-decene

We next examined the reactions of β-iodoalkoxysulfonium ion 3a-I generated by the reaction of (Z)-5-decene (2a) with I+/DMSO (1-I) cation pool [22] (Scheme 1, X = I). Bu4NI in DMSO/CH2Cl2 (1:9 v/v) was electrochemically oxidized at −78 °C in a divided cell using Bu4NBF4 as a supporting electrolyte until 2.1 F/mol of electricity was applied. After addition of 2a to the solution, the mixture was stirred at 0 °C to give 3a-I, which was characterized by NMR spectroscopy [22]. The treatment of 3a-I with triethylamine gave α-iodoketone 4a-I in 85% yield as we reported previously [22]. However, the treatment of 3a-I with NaOH and NaOMe gave iodohydrin 5a-I in 84% yield and epoxide 6a in 96% yield, respectively (Table 1). The stereochemistry as determined by NMR (5a-I was synthesized using I2 and H2O2; see Supporting Information File 1) indicated that the addition of I+ and DMSO across the CC double bond was anti-selective as anticipated.

Synthesis of halohydrins and epoxides from various alkenes

The present method was successfully applied to the synthesis of halohydrins and epoxides from various alkenes. The reactions of alkenes with 1-X followed by the treatment with NaOH gave the corresponding halohydrins as shown in Table 2. The reactions of E and Z isomers of 1-phenyl-1-propene (2d) with 1-Br gave 5d-Br and 5d’-Br, respectively (Table 2, entries 7 and 9), indicating the anti-addition of Br+ and DMSO across the CC double bond. The reaction with 1-I also gave the anti-addition products (Table 2, entries 8 and 10). Therefore, the reaction is stereospecific, and the stereochemistry is consistent with the proposed reaction mechanism (Scheme 2). The addition of Br+ or I+ and DMSO to unsymmetrically substituted olefins 2c and 2d regioselectively gave bromohydrins as single regioisomers (Table 2, entries 5–10). The regioselectivity of the products can be explained by the stability of carbocations (benzyl > secondary > primary). In the case of terminal alkene 2c, Br and I were introduced to a primary carbon atom, whereas OH was introduced to a secondary carbon atom. In the case of styrene derivative 2d, Br and I were introduced to a secondary carbon, whereas OH was introduced to the benzyl carbon. DMSO seems to attack the more positively charged carbon of the three-membered ring bromonium ion or iodonium ion.
Table 2

Synthesis of halohydrins by the reaction of 1-X with alkenes followed by the treatment with NaOH.a


EntryAlkeneProductYield (%)b

12a5a-Br, 5a-I5a-Br: 87
25a-I: 84c
32b(Z:E = 72:28)5b-Br, 5b-I5b-Br: 74(trans:cis = 79:21)
45b-I: 94(trans:cis = 71:29)
52c5c-Br, 5c-I5c-Br: 57
65c-I: 53
7(E)-2d5d-Br, 5d-I5d-Br: 73
85d-I: 35
9(Z)-2d5d’-Br, 5d’-I5d’-Br: 75
105d’-I: 51

aThe electrolysis of Bu4NBr and Bu4NI was carried out using 1.3 equiv of Bu4NX (based on the alkene which was added after the electrolysis) with 2.1 F/mol of electricity based on Bu4NX. bIsolated yield. cYield was determined by GC.

Synthesis of halohydrins by the reaction of 1-X with alkenes followed by the treatment with NaOH.a aThe electrolysis of Bu4NBr and Bu4NI was carried out using 1.3 equiv of Bu4NX (based on the alkene which was added after the electrolysis) with 2.1 F/mol of electricity based on Bu4NX. bIsolated yield. cYield was determined by GC. The reaction of 1-X with alkenes followed by the treatment with NaOMe gave the corresponding epoxides as shown in Table 3. Alkenes having an alkoxycarbonyl group gave the corresponding epoxides in moderate yields (Table 3, entries 11–14). Diene 2f reacted with 1-Br and 1-I to give monoepoxide 6f in moderate yields (Table 3, entries 13 and 14). Interestingly, 2g reacted with 1-Br to give 6g but not with 1-I (Table 3, entries 15 and 16), although the reason is not clear at present. The facial selectivity of the reaction is the opposite to that of the epoxidation using conventional reagents such as m-chloroperoxybenzoic acid (mCPBA) which epoxidizes alkenes from the less hindered face [33-34]. In this reaction, Br+ adds to the CC double bond of 2g from the less hindered face to form the corresponding three-membered ring bromonium ion intermediate. Subsequently, DMSO attacks the bromonium ion from the more hindered face to form the corresponding β-haloalkoxysulfonium ion. The treatment of the β-haloalkoxysulfonium ion with NaOMe cleaves the O–S bond to generate the alkoxide ion, which attacks the carbon atom bearing bromine to give epoxide 6g. Therefore, the installation of the oxygen atom takes place from the more hindered face.
Table 3

Synthesis of epoxides by the reaction of 1-X with alkenes followed by the treatment with NaOMe.a


EntryAlkeneProductXYield (%)b

12a6aBr95c
2I96c
32b(Z:E = 72:28)6bBr68(cis:trans = 74:26)
4I89(cis:trans = 74:26)
52c6cBr73c
6I86c
7(E)-2d6dBr53
8I38d
9(Z)-2d6d’Br60
10I67d
112e6eBr52e
12I57e
132f6fBr49e
14I47e
152g6gBr69
16I0

aThe electrolysis was carried out using 1.3 equiv of Bu4NBr or Bu4NI (based on the alkene which was added after electrolysis) with 2.1 F/mol of electricity based on Bu4NBr or Bu4NI. bIsolated yield. cYield was determined by GC. d2.0 Equiv of Bu4NI was used. eReacted with 2.5 equiv of NaOMe for 2 h.

Synthesis of epoxides by the reaction of 1-X with alkenes followed by the treatment with NaOMe.a aThe electrolysis was carried out using 1.3 equiv of Bu4NBr or Bu4NI (based on the alkene which was added after electrolysis) with 2.1 F/mol of electricity based on Bu4NBr or Bu4NI. bIsolated yield. cYield was determined by GC. d2.0 Equiv of Bu4NI was used. eReacted with 2.5 equiv of NaOMe for 2 h.

Reaction mechanism

To confirm the mechanism shown in Scheme 2, the experiment was repeated using 18O-labeled DMSO (96% 18O)/CH2Cl2 (1:50 v/v). As outlined in Scheme 3, epoxide 6c containing 18O (94% 18O) was obtained in 81% yield, indicating that the oxygen atom in the product originated from DMSO. Since 18O-labeled DMSO can be easily obtained from H218O [35], the present transformation serves as a convenient method for synthesizing 18O-labeled epoxides, that can be used for various mechanistic and biological studies.
Scheme 3

Mechanistic study using 18O-DMSO.

Mechanistic study using 18O-DMSO.

Conclusion

In conclusion, we found that the reaction pathways of β-haloalkoxysulfonium ions generated by the reaction of electrogenerated Br+ and I+ stabilized by dimethyl sulfoxide (DMSO) can be switched by changing the nature of the base. The present transformation serves as stereospecific route to halohydrins and epoxides from alkenes. The method is also useful for synthesizing 18O-labeled epoxides. Experimental and analytical data.
  16 in total

1.  Basic concepts of "cation pool" and "cation flow" methods and their applications in conventional and combinatorial organic synthesis.

Authors:  Jun-ichi Yoshida; Seiji Suga
Journal:  Chemistry       Date:  2002-06-17       Impact factor: 5.236

2.  Modern strategies in electroorganic synthesis.

Authors:  Jun-ichi Yoshida; Kazuhide Kataoka; Roberto Horcajada; Aiichiro Nagaki
Journal:  Chem Rev       Date:  2008-06-20       Impact factor: 60.622

3.  Understanding the reactivity of enol ether radical cations: investigation of anodic four-membered carbon ring formation.

Authors:  Yusuke Yamaguchi; Yohei Okada; Kazuhiro Chiba
Journal:  J Org Chem       Date:  2013-03-04       Impact factor: 4.354

4.  Halogen and chalcogen cation pools stabilized by DMSO. Versatile reagents for alkene difunctionalization.

Authors:  Yosuke Ashikari; Akihiro Shimizu; Toshiki Nokami; Jun-ichi Yoshida
Journal:  J Am Chem Soc       Date:  2013-10-17       Impact factor: 15.419

5.  Efficient anodic and direct phenol-arene C,C cross-coupling: the benign role of water or methanol.

Authors:  Axel Kirste; Bernd Elsler; Gregor Schnakenburg; Siegfried R Waldvogel
Journal:  J Am Chem Soc       Date:  2012-02-13       Impact factor: 15.419

6.  Integrated electrochemical-chemical oxidation mediated by alkoxysulfonium ions.

Authors:  Yosuke Ashikari; Toshiki Nokami; Jun-ichi Yoshida
Journal:  J Am Chem Soc       Date:  2011-07-18       Impact factor: 15.419

7.  Selective monoiodination of aromatic compounds with electrochemically generated I+ using micromixing.

Authors:  Koji Midorikawa; Seiji Suga; Jun-ichi Yoshida
Journal:  Chem Commun (Camb)       Date:  2006-08-03       Impact factor: 6.222

8.  Organocatalyzed anodic oxidation of aldehydes.

Authors:  Eric E Finney; Kelli A Ogawa; Andrew J Boydston
Journal:  J Am Chem Soc       Date:  2012-07-17       Impact factor: 15.419

9.  Can one predict changes from S(N)1 to S(N)2 mechanisms?

Authors:  Thanh Binh Phan; Christoph Nolte; Shinjiro Kobayashi; Armin R Ofial; Herbert Mayr
Journal:  J Am Chem Soc       Date:  2009-08-19       Impact factor: 15.419

10.  Electrochemical C-H amination: synthesis of aromatic primary amines via N-arylpyridinium ions.

Authors:  Tatsuya Morofuji; Akihiro Shimizu; Jun-ichi Yoshida
Journal:  J Am Chem Soc       Date:  2013-03-22       Impact factor: 15.419

View more
  2 in total

1.  Synthetic Organic Electrochemical Methods Since 2000: On the Verge of a Renaissance.

Authors:  Ming Yan; Yu Kawamata; Phil S Baran
Journal:  Chem Rev       Date:  2017-10-09       Impact factor: 60.622

2.  Electrochemical Corey-Winter reaction. Reduction of thiocarbonates in aqueous methanol media and application to the synthesis of a naturally occurring α-pyrone.

Authors:  Ernesto Emmanuel López-López; José Alvano Pérez-Bautista; Fernando Sartillo-Piscil; Bernardo A Frontana-Uribe
Journal:  Beilstein J Org Chem       Date:  2018-03-02       Impact factor: 2.883

  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.