Abstract

Homogeneity of copolymers is a general problem of catalytic coordination polymerization. In ring-opening polymerization of cyclic esters, the rational design of the catalyst is generally applied to solve this problem by the equalization of the reactivities of comonomers—however, it often leads to a reduction of catalytic activity. In the present paper, we studied the catalytic behavior of BnOH-activated complexes (BHT)Mg(THF)2nBu (1), (BHT)2AlMe (2) and [(BHT)ZnEt]2 (3), based on 2,6-di-tert-butyl-4-methylphenol (BHT-H) in homo- and copolymerization of L-lactide (lLA) and ε-caprolactone (εCL). Even at 1:5 lLA/εCL ratio Mg complex 1 catalyzed homopolymerization of lLA without involving εCL to the formation of the polymer backbone. On the contrary, Zn complex 3 efficiently catalyzed random lLA/εCL copolymerization; the presence of mono-lactate subunits in the copolymer chain clearly pointed to the transesterification mechanism of copolymer formation. Both epimerization and transesterification side processes were analyzed using the density functional theory (DFT) modeling that confirmed the qualitative difference in catalytic behavior of 1 and 3: Mg and Zn complexes demonstrated different types of preferable coordination on the PLA chain (k2 and k3, respectively) with the result that complex 3 catalyzed controlled εCL ROP/PLA transesterification, providing the formation of lLA/εCL copolymers that contain mono-lactate fragments separated by short oligo(εCL) chains. The best results in the synthesis of random lLA/εCL copolymers were obtained during experiments on transesterification of commercially available PLLA, the applicability of 3/BnOH catalyst in the synthesis of random copolymers of εCL with methyl glycolide, ethyl ethylene phosphonate and ethyl ethylene phosphate was also demonstrated.

Highlights

  • Both epimerization and transesterification side processes were analyzed using the density functional theory (DFT) modeling that confirmed the qualitative difference in catalytic behavior of 1 and 3: Mg and Zn complexes demonstrated different types of preferable coordination on the PLA chain (k2 and k3, respectively) with the result that complex 3 catalyzed controlled εCL ring-opening polymerization (ROP)/PLA transesterification, providing the formation of lLA/εCL copolymers that contain mono-lactate fragments separated by short oligo(εCL) chains

  • We report the results of the experimental and theoretical study of the catalytic behavior of Mg, Zn and Al phenolates in the synthesis of random copolymers of εCL with L-lactide and other prospective ROP comonomers, bearing in mind underestimated side processes of transesterification and enolization

  • BnOH-activated complexes (BHT)-Zn complex 3 at elevated temperatures efficiently catalyzed efficient catalyst for the synthesis of a random lLA/εCL copolymer, the presence of mono-lactate homopolymerization of LLA and εCL, and polymerization of LLA was not fragments in the copolymer backbone clearly indicates that the formation of the copolymer occurs by accompanied by side reactions

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Summary

Introduction

Catalytic ring-opening polymerization (ROP) of cyclic esters is the basis for the efficient synthetic approach to actualpolymerization biodegradable and biocompatible [1,2,3,4,5,6,7]. The first approach (Scheme 2B) is to adjust the reactivity ratios of LA and εCL equal with a formation of the random copolymer in the course of living ROP; this approach can be potentially implemented via the catalyst’s design This approach had been realized, more or less successfully, when used with sterically hindered complexes of Al [44,48,49,50,51,52,53,54,55,56,57,58,59,60,61], Zn [43,62,63,64,65,66], Ti [67,68,69,70,71,72,73], Zr [70,71], Hf [70], Mo [74], Mg or alkali-earth metals [45,75] and lanthanides [76,77,78]. Our research resulted in the development of an efficient catalytic method of the synthesis of highly statistical biodegradable εCL-based copolymers that are potentially suitable for different applications

Materials and Methods
Instruments and Methods
Preparation and X-ray Diffraction Study of the Complex 4
Polymerization Experiments
Copolymerization of lLA and εCL
Copolymerization of εCL with Other Comonomers
DFT Calculations
81 The final
Homopolymerization
Copolymerization of LlLA
The probability for thermal ellipsoids the Figure the complex
Optimized
Synthesis
Comonomers
Conclusions
Full Text
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