Zwitterionic catalysts for (trans)esterification: application in fluoroindole-derivatives and biodiesel synthesis
11583842 · 2023-02-21
Assignee
Inventors
- Ying-Yeung Yeung (Hong Kong, CN)
- Ying-Pong Lam (Hong Kong, CN)
- Zhihai Ke (Hong Kong, CN)
- Xinyan Wang (Guangdong, CN)
- Fei Tan (Hong Kong, CN)
- Wing-Hin Ng (Hong Kong, CN)
- Ying-Lung Steve Tse (Hong Kong, CN)
Cpc classification
C07D213/90
CHEMISTRY; METALLURGY
Y02E50/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01J31/0239
PERFORMING OPERATIONS; TRANSPORTING
C07D233/61
CHEMISTRY; METALLURGY
B01J31/0244
PERFORMING OPERATIONS; TRANSPORTING
B01J31/0271
PERFORMING OPERATIONS; TRANSPORTING
C07D207/09
CHEMISTRY; METALLURGY
C07D401/04
CHEMISTRY; METALLURGY
B01J2231/49
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J31/02
PERFORMING OPERATIONS; TRANSPORTING
C07D401/04
CHEMISTRY; METALLURGY
C07D233/61
CHEMISTRY; METALLURGY
C07D207/09
CHEMISTRY; METALLURGY
C07D213/90
CHEMISTRY; METALLURGY
Abstract
An amide/iminium zwitterion catalyst has a catalyst pocket size that promotes transesterification and dehydrative esterification. The amide/iminium zwitterions are easily prepared by reacting aziridines with aminopyridines. The reaction can be applied a wide variety of esterification processes including the large-scale synthesis of biodiesel. The amide/iminium zwitterions allow the avoidance of strongly basic or acidic condition and avoidance of metal contamination in the products. Reactions are carried out at ambient or only modestly elevated temperatures. The amide/iminium zwitterion catalyst is easily recycled and reactions proceed in high to quantitative yields.
Claims
1. An amide/iminium zwitterionic catalyst, comprising a sulfonamide negative site and an iminium positive site with three to seven bonds residing between the sulfonamide negative site and the iminium positive site.
2. The amide/iminium zwitterionic catalyst according to claim 1, wherein the iminium is derived from a 4-aminopyridine, N-alkyl pyrrolidone, or an N-alkyl imidazole.
3. The amide/iminium zwitterionic catalyst according to claim 1, wherein the structure is: ##STR00006## where: n is 1, 2, 3, or 4; R is independently H, aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, aryl substituted C.sub.1 to C.sub.6 alkyl, wherein any of the carbons of the alky or aryl groups is unsubstituted or substituted with a C.sub.1 to C.sub.6 alkyl ether, aryl ether, C.sub.1 to C.sub.6 alkyl thioether, aryl thioether and where the alkyl is straight, branched, or cyclo alkyl, and where the alkyl is optionally interrupted one or more times with an O or S; R.sup.1 is aryl, nitro substituted aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, or C.sub.1 to C.sub.6 perfluoroalkyl; and R.sup.2 and R.sup.3 are independently C.sub.1 to C.sub.6 alkyl or in combination form a 5- or 6-membered ring heterocyclic ring, where the ring is optionally interrupted with one or more O, N, or NR′ units, where R′ is aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, or C.sub.1 to C.sub.6 alkyl.
4. The amide/iminium zwitterionic catalyst according to claim 1, wherein the structure is: ##STR00007## ##STR00008##
5. The amide/iminium zwitterionic catalyst according to claim 1, wherein the structure is: ##STR00009##
6. A method of forming an amide/iminium zwitterionic catalyst according to claim 1, comprising: providing an N-sulfonated aziridine; providing a nitrogen comprising heterocycle; combine the N-sulfonated aziridine and the heterocycle; and isolate the amide/iminium zwitterionic catalyst.
7. The method according to claim 6, wherein the N-sulfonated aziridine is an N-sulfonated cycloalkyl aziridine.
8. The method according to claim 6, wherein the N-sulfonated aziridine is: ##STR00010## where: n is 1, 2, 3, or 4; R is independently H, aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, aryl substituted C.sub.1 to C.sub.6 alkyl, wherein any of the carbons of the alky or aryl groups is unsubstituted or substituted with a C.sub.1 to C.sub.6 alkyl ether, aryl ether, C.sub.1 to C.sub.6 alkyl thioether, aryl thioether and where the alkyl is straight, branched, or cyclo alkyl, and where the alkyl is optionally interrupted one or more times with an O or S; and R.sup.1 is aryl, nitro substituted aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, or C to C.sub.6 perfluoroalkyl.
9. The method according to claim 6, wherein the N-sulfonated aziridine is mesyl cyclohexene imine or tosyl cyclohexene imine.
10. The method according to claim 6, wherein the nitrogen comprising heterocycle is an N-alkyl pyrrolidone, an N-alkyl imidazole, a 4-(N,N-dialkylamino)pyridine, or a 4-pyrrolidylpyridine.
11. The method according to claim 6, wherein the nitrogen comprising heterocycle is: ##STR00011## where R.sup.2 and R.sup.3 are independently C.sub.1 to C.sub.6 alkyl or in combination form a 5- or 6-membered ring heterocyclic ring, where the ring is optionally interrupted with one or more O, N, or NR′ units, where R′ is aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, or C.sub.1 to C.sub.6 alkyl.
12. An esterification method, comprising: providing a amide/iminium zwitterionic catalyst according to claim 1; providing a molecule comprising a carboxylic acid or a carboxylic acid derivative; providing a molecule comprising an alcohol; combining the molecule comprising a carboxylic acid or the molecule comprising a carboxylic acid derivative, the molecule comprising an alcohol, and the amide/iminium zwitterionic catalyst; and isolating a molecule comprising an ester.
13. The esterification method according to claim 12, wherein the amide/iminium zwitterionic catalyst is wherein the iminium is derived from a 4-aminopyridine, N-alkyl pyrrolidone, or an N-alkyl imidazole.
14. The esterification method according to claim 12, wherein the amide/iminium zwitterionic catalyst is: ##STR00012## where: n is 1, 2, 3, or 4; R is independently H, aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, aryl substituted C.sub.1 to C.sub.6 alkyl, wherein any of the carbons of the alky or aryl groups is unsubstituted or substituted with a C.sub.1 to C.sub.6 alkyl ether, aryl ether, C.sub.1 to C.sub.6 alkyl thioether, aryl thioether and where the alkyl is straight, branched, or cyclo alkyl, and where the alkyl is optionally interrupted one or more times with an O or S; R.sup.1 is aryl, nitro substituted aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, or C.sub.1 to C.sub.6 perfluoroalkyl; and R.sup.2 and R.sup.3 are independently C.sub.1 to C.sub.6 alkyl or in combination form a 5- or 6-membered ring heterocyclic ring, where the ring is optionally interrupted with one or more O, N, or NR′ units, where R′ is aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, or C.sub.1 to C.sub.6 alkyl.
15. The esterification method according to claim 12, wherein the amide/iminium zwitterionic catalyst is: ##STR00013## ##STR00014##
16. The esterification method according to claim 12, wherein the molecule comprising an alcohol is a C.sub.1 to C.sub.30 alcohol of the structure HOC(H).sub.xR.sub.3-x where x is 1 to 3 and R is independently liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R can be interrupted with one or more times with O, S, C(O), NR″, or C(O)NR″, and where any of the carbon atoms of R can be substituted with a, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one or more hetero atoms, halogen, alkoxy, R″.sub.2N where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl.
17. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative is a carboxylic acid is RC(O)OH where R is R is independently: H; liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; or N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R is optionally interrupted with one or more times with O, S, C(O), or C(O)NR″ where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl, and where any of the carbon atoms of R can be substituted with halogen, C.sub.1 to C.sub.10 liner, branched, or cyclic alkoxy, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one to four hetero atoms.
18. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative is a carboxylic ester of the structure RC(O)OR′ where: R is selected from, but not limited to, H, liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R are optionally interrupted with one or more times with O, S, C(O), or C(O)NR″ where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl, and where any of the carbon atoms of R can be substituted with a, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one to four hetero atoms, halogen, and alkoxy; and R′ is selected from methyl, ethyl, n-propyl, i-propyl, n-butyl, i-butyl, sec-butyl, tert-butyl or neo-pentyl.
19. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative is a triglyceride of the structure: ##STR00015## where R is independently a straight or branched C.sub.1 to C.sub.26 alkyl chain, straight or branched C.sub.3 to C.sub.26 alkenyl chain having 1 to 6 degrees of unsaturation.
20. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative is a carboxylic acid anhydride of the structure RC(O)OC(O)R where R is independently H, liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R id optionally interrupted with one or more times with O, S, C(O), or C(O)NR″ where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl, and where any of the carbon atoms of R can be substituted with a, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one to four hetero atoms, halogen, or alkoxy.
21. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative is a triglyceride and the molecule comprising an ester is a fatty acid methyl ester (FAME).
22. The esterification method according to claim 21, wherein the FAME is the methyl ester of butyric acid, valeric acid, caproic acid, enanthic acid, caprylic acid, pelargonic acid, capric acid, undecylic acid, lauric acid, tridecylic acid, myristic acid, pentadecylic acid, palmitic acid, margaric acid, stearic acid, nonadecylic acid; arachidic acid, heneicosylic acid, behenic acid, tricosylic acid, lignoceric acid, pentacosylic acid, cerotic acid, carboceric acid, montanic acid, nonacosylic acid, melissic acid, hentriacontylic acid, lacceroic acid, psyllic acid, geddic acid, ceroplastic acid, hexatriacontylic acid, heptatriacontylic acid, octatriacontylic acid, nonatriacontylic acid, tetracontylic acid, α-linolenic acid, stearidonic acid, eicosapentaenoic acid, docosahexaenoic acid, linoleic acid, linolelaidic acid, γ-linolenic acid, dihomo-γ-linolenic acid, arachidonic acid, docosatetraenoic acid, palmitoleic acid, vaccenic acid, paullinic acid, oleic acid, elaidic acid, gondoic acid, erucic acid, nervonic acid, mead acid, or any combination thereof.
23. The esterification method according to claim 12, wherein the molecule comprising a carboxylic acid or a carboxylic acid derivative and the molecule comprising an alcohol is combined as an alcohol substituted carboxylic ester of the structure HO(CH.sub.2).sub.xC(O)OR where x is 3-5 and R′ is selected from methyl, ethyl, or propyl, wherein molecule comprising an ester is a lactone.
24. The esterification method according to claim 12, wherein the molecule comprising an ester is a fluoroindole-derivative.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DISCLOSURE OF THE INVENTION
(18) A new class of a zwitterionic catalyst comprises an amide/iminium zwitterion that separates the center of the charges on a sulfonamide and the iminium derived from a 4-aminopyridine by three to seven bonds, according to an embodiment of the invention. An amide/iminium zwitterionic catalyst, according to an embodiment of the invention has the structure:
(19) ##STR00002##
where: n is 1, 2, 3, or 4; R is independently H, aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, aryl substituted C.sub.1 to C.sub.6 alkyl, wherein any of the carbons of the alky or aryl groups is unsubstituted or substituted with a C.sub.1 to C.sub.6 alkyl ether, aryl ether, C.sub.1 to C.sub.6 alkyl thioether, aryl thioether and where the alkyl is straight, branched, or cyclo alkyl, and where any of the alkyl groups may be interrupted one or more times with an O or S; R.sup.1 is aryl, nitro substituted aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, C.sub.1 to C.sub.6 alkyl, or C.sub.1 to C.sub.6 perfluoroalkyl; and R.sup.2 and R.sup.3 are independently C.sub.1 to C.sub.6 alkyl or in combination form a 5- or 6-membered ring heterocyclic ring with the iminium nitrogen, where the ring is optionally interrupted with one or more O or NR′ units, where R′ is aryl, C.sub.1 to C.sub.6 alkyl substituted aryl, or C.sub.1 to C.sub.6 alkyl. In an exemplary embodiment of the invention, SO.sub.2R.sup.1 is tosyl or mesyl and R.sup.2 and R.sup.3 are methyl or NR.sup.2R.sup.3 are combined as pyrrolidone (PPY), as indicated below:
(20) ##STR00003## ##STR00004##
(21) In an embodiment of the invention, preparation of the amide/iminium zwitterionic catalyst occurs by nucleophilic attack of a bicyclic aziridine by a 4-aminopyridine, as shown in
(22) In an embodiment of the invention, the amide/iminium zwitterionic catalyst promotes transesterification of triglycerides to fatty acid methyl esters (FAMEs), which are commonly used as biodiesel. As shown in
(23) The transesterification of triglycerides is applicable to other fatty acid esters, for example, as shown in
(24) ##STR00005##
where R is independently a straight or branched C.sub.1 to C.sub.26 alkyl chain, straight or branched C.sub.3 to C.sub.26 alkenyl chain having 1 to 6 degrees of unsaturation. Among a non-exclusive list of fatty acids that can be a portion of the triglyceride include, but are not limited to butyric acid, valeric acid, caproic acid, enanthic acid, caprylic acid, pelargonic acid, capric acid, undecylic acid, lauric acid, tridecylic acid, myristic acid, pentadecylic acid, palmitic acid, margaric acid, stearic acid, nonadecylic acid; arachidic acid, heneicosylic acid, behenic acid, tricosylic acid, lignoceric acid, pentacosylic acid, cerotic acid, carboceric acid, montanic acid, nonacosylic acid, melissic acid, hentriacontylic acid, lacceroic acid, psyllic acid, geddic acid, ceroplastic acid, hexatriacontylic acid, heptatriacontylic acid, octatriacontylic acid, nonatriacontylic acid, tetracontylic acid, α-linolenic acid, stearidonic acid, eicosapentaenoic acid, docosahexaenoic acid, linoleic acid, linolelaidic acid, γ-linolenic acid, dihomo-γ-linolenic acid, arachidonic acid, docosatetraenoic acid, palmitoleic acid, vaccenic acid, paullinic acid, oleic acid, elaidic acid, gondoic acid, erucic acid, nervonic acid, and mead acid. The alcohol used for the formation of the FAMEs, according to an embodiment of the invention, can include any C.sub.1 to C.sub.10 alcohol, including, but not limited to, methanol, ethanol, 1-propanol, n-butanol, isobutanol, 1-pentanol, isoamyl alcohol, 2-methyl-1-butanol, 1-hexanol, 1-heptanol, 1-octanol, 1-nonanol, 1-decanol, benzyl alcohol, or phenethyl alcohol.
(25) FAME 6a is easily separated by aqueous washing to remove the glycerol and zwitterionic catalyst 5d. The by-product mixture containing glycerol, commonly a large by-product in the production of biodiesel, in the presence of catalyst 5d undergoes transesterification with ethyl acetate to give triacetin in high yield, as indicated in
(26) Amide/iminium zwitterionic catalysts, such as 5d, catalyze transesterification of monoesters with alcohols, according to an embodiment of the invention. As shown in
(27) Among the alcohols that can be used for the transesterification with carboxylic acid esters, according to an embodiment of the invention, include, but are not limited to primary or secondary C.sub.1 to C.sub.30 alcohols of the structure HOC(H).sub.xR.sub.3-x where x is 1 to 3 and R is independently liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R can be interrupted with one or more times with O, S, C(O), NR″, or C(O)NR″, and where any of the carbon atoms of R can be substituted with a, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one or more hetero atoms, halogen, alkoxy, R″.sub.2N where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl. Alcohols include primary and secondary ols, diols, triols, and polyols, where mono-,di-, tri-, or poly-esters are formed. The polyol can be a carbohydrate, including monosaccharides, disaccharides, and polyols such as, but not limited to, glucose, galactose, fructose, xylose, sucrose, lactose, maltose, trehalose, sorbitol, and mannitol. The esters can have the structure: RC(O)OR′ where: R is selected from, but not limited to, H, liner, branched, or cyclic alkyl; liner, branched, or cyclic alkenyl; liner, branched, or cyclic alkynyl; aryl; liner, branched, or cyclic alkylaryl; liner, branched, or cyclic alkenylaryl; liner, branched, or cyclic alkynylaryl; N, O and/or S comprising heterocycle having one to four hetero atoms, where the carbons of R can be interrupted with one or more times with O, S, C(O), or C(O)NR″ where R″ is independently aryl, C.sub.1 to C.sub.10 alkyl, or C.sub.1 to C.sub.10 alkenyl, and where any of the carbon atoms of R can be substituted with a, C.sub.1 to C.sub.10 liner, branched, or cyclic alkyl, liner, branched, or cyclic alkenyl, liner, branched, or cyclic alkynyl, aryl, liner, branched, or cyclic alkylaryl, liner, branched, or cyclic alkenylaryl, liner, branched, or cyclic alkynylaryl, N, O and/or S comprising heterocycle having one to four hetero atoms, halogen, and alkoxy; and R′ is selected from methyl, ethyl, n-propyl, i-propyl, n-butyl, i-butyl, sec-butyl, tert-butyl or neo-pentyl.
(28) Amide/iminium zwitterionic catalyst, according to an embodiment of the invention, promotes reaction between anhydrides, for example, succinic anhydride 12, and alcohols, for example, benzyl alcohol, BnOH, 8a, to give diesters, for example 13a, as shown in
(29) The dehydrative esterification step of the anhydride esterification encourages catalyzing dehydrative esterification between a carboxylic acid and an alcohol, which is known to be challenging due to the high reaction barrier that requires strongly acidic catalysts to activate the carboxylic acid substrates. The sulfide/iminium zwitterion, 3b, was found to be ineffective in catalyzing the dehydrative esterification, attributed to alcoholysis of its constitutional component 3,5-(bistrifluoromethyl)phenyl isothiocyanate by benzyl alcohol. According to an embodiment of the invention, dehydrative esterification starting from carboxylic acids, for example, 16a-i of
(30) The mechanism for the dehydrative esterification is particularly remarkable in that the reaction employs a non-acidic catalyst. .sup.1H NMR experiments of benzyl alcohol 8a mixed with 5d and acetic acid mixed with 5d indicate that the alcohol and the carboxylic acid can interact with the zwitterion 5d. Density functional theory (DFT) calculations at the level of M06-2X (with Grimme D3)/6-311G(d,p) for the reaction between butyric acid (16i) and benzyl alcohol (8a) allow a better understanding on the reaction, as shown in
(31) In the optimized geometry of 5d-TS1, the pyrrolidine protons adjacent to the iminium cation in zwitterion 5d are positioned in close proximity to the oxygen of the carbonyl of 16i with distances at 2.40 and 2.63 Å (average=2.51 Å) as shown in
(32) DFT calculations for the transesterification reaction between benzyl alcohol (8a) and ethyl acetate with zwitterionic catalyst 5d are graphically represented in
(33) Although the zwitterion is not Brønsted acidic, the non-classical hydrogen bond in 5d appears to play an important role in activating the carbonyl group of carboxylic acid and ester in the dehydrative esterification and transesterification, respectively. A suitable catalyst pocket size defined by the distance between the anion and the cation in the zwitterionic system appears to be crucial in accommodating the reaction partners for high catalytic performance.
(34) It should be understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this application. In addition, any elements or limitations of any invention or embodiment thereof disclosed herein can be combined with any and/or all other elements or limitations (individually or in any combination) or any other invention or embodiment thereof disclosed herein, and all such combinations are contemplated with the scope of the invention without limitation thereto. All publications referred to or cited herein are incorporated by reference in their entirety, including all figures and tables, to the extent they are not inconsistent with the explicit teachings of this specification.