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聚(单硫碳酸酯)的交替和区域选择性共聚的羰基硫与环氧化物。

Poly(monothiocarbonate)s from the Alternating and Regioselective Copolymerization of Carbonyl Sulfide with Epoxides.

机构信息

MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University , Hangzhou 310027, China.

Department of Chemistry, Texas A&M University , College Station, Texas 77843, United States.

出版信息

Acc Chem Res. 2016 Oct 18;49(10):2209-2219. doi: 10.1021/acs.accounts.6b00345. Epub 2016 Sep 27.

Abstract

Carbonyl sulfide (COS) is an air pollutant that causes acid rain, ozonosphere damage, and carbon dioxide (CO) generation. It is a heterocumulene and structural analogue of CO. Relevant to organic synthesis, it is a source of C═O or C═S groups and thus an ideal one-carbon (C1) building block for synthesizing sulfur-containing polymers through the similar route of CO copolymerization. In contrast, traditional synthesis of sulfur-containing polymers often involves the condensation of thiols with phosgene and ring-opening polymerization of cyclic thiocarbonates that are generally derived from thiols and phosgene; thus, COS/epoxide copolymerization is a "greener" route to supplement or supplant current processes for the production of sulfur-containing polymers. This Accounts highlights our efforts on the discovery of the selective formation of poly(monothiocarbonate)s from COS with epoxides via heterogeneous zinc-cobalt double metal cyanide complex (Zn-Co(III) DMCC) and homogeneous (salen)CrX complexes. The catalytic activity and selectivity of Zn-Co(III) DMCC for COS/epoxide copolymerization are similar to those for CO/epoxide copolymerization. (salen)CrX complexes accompanied by onium salts exhibited high activity and selectivity for COS/epoxide copolymerization under mild conditions, affording copolymers with >99% monothiocarbonate units and high tail-to-head content up to 99%. By way of contrast, these catalysts often show moderate or low activity for CO/epoxide copolymerization. Of note, a specialty of COS/epoxide copolymerization is the occurrence of an oxygen-sulfur exchange reaction (O/S ER), which may produce carbonate and dithiocarbonate units. O/S ER, which are induced by the metal-OH bond regenerated by chain transfer reactions, can be kinetically inhibited by changing the reaction conditions. We provide a thorough mechanistic understanding of the electronic/steric effect of the catalysts on the regioselectivity of COS copolymerization. The regioselectivity of the copolymerization originates from the solely nucleophilic attack of the sulfur anion to methylene of the epoxide, and thus, the chiral configuration of the monosubstituted epoxides is retained. COS-based copolymers are highly transparent sulfur-containing polymers with excellent optical properties, such as high refractive index and Abbe number. Thanks to their good solubility and many available epoxides, COS/epoxide copolymers can potentially be a new applicable optical material. Very recently, crystalline COS-based polymers with or without chiral carbons have been synthesized, which may further expand the scope of application of these new materials.

摘要

羰基硫 (COS) 是一种空气污染物,会导致酸雨、臭氧层破坏和二氧化碳 (CO) 的产生。它是杂cumulene 和 CO 的结构类似物。与有机合成有关,它是 C═O 或 C═S 基团的来源,因此是通过类似的 CO 共聚合成含硫聚合物的理想一碳 (C1) 构建块。相比之下,传统的含硫聚合物合成通常涉及硫醇与光气的缩合以及环状硫代碳酸酯的开环聚合,这些环状硫代碳酸酯通常由硫醇和光气衍生而来;因此,COS/环氧化物共聚是一种“更环保”的方法,可以补充或替代当前生产含硫聚合物的工艺。本文重点介绍了我们在通过异质锌-钴双金属氰化物配合物 (Zn-Co(III)DMCC) 和均相 (salen)CrX 配合物从 COS 与环氧化物选择性合成聚 (单硫代碳酸酯) 方面的研究成果。Zn-Co(III)DMCC 对 COS/环氧化物共聚的催化活性和选择性与 CO/环氧化物共聚相似。(salen)CrX 配合物与翁盐一起在温和条件下表现出高活性和选择性,可得到具有 >99%单硫代碳酸酯单元和高达 99%的尾-头含量的共聚物。相比之下,这些催化剂通常对 CO/环氧化物共聚表现出中等或低活性。值得注意的是,COS/环氧化物共聚的一个特点是发生氧-硫交换反应 (O/S ER),可能会产生碳酸盐和二硫代碳酸盐单元。O/S ER 是由链转移反应再生的金属-OH 键引起的,可以通过改变反应条件来抑制动力学。我们提供了对催化剂电子/空间效应的全面机理理解,以了解其对 COS 共聚的区域选择性的影响。共聚的区域选择性源于硫阴离子对环氧化物亚甲基的唯一亲核攻击,因此,单取代环氧化物的手性构型得以保留。基于 COS 的共聚物是具有高光学性能的高度透明含硫聚合物,例如高折射率和阿贝数。由于其良好的溶解性和许多可用的环氧化物,COS/环氧化物共聚物可能成为一种新的适用光学材料。最近,已经合成了具有或不具有手性碳的结晶性 COS 基聚合物,这可能会进一步扩大这些新材料的应用范围。

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