BH3·SMe2 addition enables molar mass control via chain stabilization in phosphine–borane dehydropolymerization†

IF 3.9 2区 化学 Q2 POLYMER SCIENCE Polymer Chemistry Pub Date : 2025-02-05 Epub Date: 2025-02-07 DOI:10.1039/d4py01362j
Matthew A. Wiebe , Jade E. T. Watson , Charles Killeen , J. Scott McIndoe , Anne Staubitz , Ian Manners
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Abstract

We report the synthesis of high molar mass polyphosphinoboranes using commercially available reagents through thermal dehydropolymerization in the presence of Lewis acids and bases. These dehydropolymerizations produce materials of higher molecular weight compared to the state-of-the-art catalyst, Cp(CO)2FeOTf ([PhPH-BH2]n (), 5 mol% LiOTf, 2 M in 2-MeTHF, 100 °C, 24 h; Mn = 80 000 g mol−1, Đ = 1.64 cf. 5 mol% Cp(CO)2FeOTf, 2 M in toluene, 100 °C, 24 h, Mn = 40 000 g mol−1, Đ = 1.64). We propose a mechanism for the thermal dehydropolymerization of PhPH2·BH3 () with additives. Initially, the phosphine–borane adduct dissociates, yielding borane in situ, which acts as a (pre)catalyst for the dehydrogenation of . Subsequent addition polymerization occurs as described previously, but the addition of Lewis acids and Lewis bases allows for reversible complexation of both termini. Competition between temporary chain capping and termination events results in fewer termination events over time, leading to high molar mass materials. With this mechanism in mind, we were able to show that added BH3·SMe2 allows for control over the molar mass of the resulting materials. These results show that transition-metal catalysts are not needed in the thermal dehydropolymerization of PhPH2·BH3, and offer a new mechanistic insight that may unlock greater control over the dehydropolymerization of main-group substrates.

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在膦-硼烷脱氢聚合中,加入BH3•SMe2可通过链稳定控制摩尔质量
我们报道了在路易斯酸和碱的存在下,用市售试剂通过热脱氢聚合合成高摩尔质量聚磷硼烷。这些脱氢聚合反应产生的材料比目前最先进的催化剂Cp(CO)2FeOTf, ([PhPH-BH2]n (2) 5 mol% LiOTf, 2 M in 2- methf, 100°C, 24 h更高的分子量;Mn = 80000 g•mol−1,Đ= 1.64 c.f. 5 mol% Cp(CO)2FeOTf, 2m甲苯,100℃,24 h, Mn = 40 g•mol−1,Đ= 1.64)。我们提出了PhPH2•BH3(1)与添加剂热脱氢聚合的机理。最初,膦-硼烷加合物在原位解离生成硼烷,硼烷作为1脱氢的(预)催化剂。随后的加成聚合发生如前面所述,但路易斯酸和路易斯碱的加成允许可逆络合两个末端。临时链封顶和终止事件之间的竞争导致每次终止事件较少,从而导致物质的高摩尔质量。考虑到这一机制,我们能够证明添加BH3•SMe2可以控制所得材料的摩尔质量。这些结果表明,在PhPH2•BH3的热脱氢聚合中不需要过渡金属催化剂,并提供了一种新的机制,可以更好地控制主基底物的脱氢聚合。
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来源期刊
Polymer Chemistry
Polymer Chemistry POLYMER SCIENCE-
CiteScore
8.60
自引率
8.70%
发文量
535
审稿时长
1.7 months
期刊介绍: Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.
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