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Photochemical transformation of benzil pendant groups of polystyrene copolymers into benzoyl peroxide moieties and their subsequent thermal decomposition. Cross-linking or chain scission?

机译:聚苯乙烯共聚物的苄基侧基的光化学转化为过氧化苯甲酰部分及其随后的热分解。交联或断链?

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Films of the copolymer, 11 wt% 1-{4-(2-methacroyloxyethoxyphenyl}-2-phenyl-1,2-ethanedione (BZMA) and styrene (S) (BZMA/S), as well as polystyrene (PS) doped with either the BZMA monomer (BZMA-PS) or 1-{4-(2-acetyloxyethoxy-phenyl}-2-phenyl-1,2-ethanedione (BZAc-PS) in concentrations that match the composition of the copolymer, have been irradiated (lambda > 400 nm) in the presence of molecular oxygen at ambient temperatures. The rates of consumption of BZMA and BZAc and the concurrent formation of the corresponding benzoyl peroxide-containing units (BPMA and BPAc) were followed by infrared spectroscopy. The rates of benzil-group consumption and peroxide formation matched each other and were virtually the same in the three film types. Larger concentrations of oxygen increased the rate of consumption of BZMA. From a kinetic treatment of data at two concentrations of oxygen in PS, it is concluded that BZMA photooxidation is more than 10 times faster than that of benzil. At 91 degrees C, the first-order rate constants for thermal decomposition of BPMA and BPAc in PS are equal to and are larger than in the BPMA/S copolymer. The lower rate constant of BPMA/S, as well as the worse fit of the rate data from BPMA and BPAc in PS to a unimolecular decomposition model, is ascribed to some bimolecular decomposition, probably from aggregated peroxides. There is no indication of a bimolecular decomposition component in the copolymer. A very large portion (91 wt %) of BPMA/S, from irradiation of BZMA/S, is THF insoluble (i.e., cross-linked). The insoluble part increases to about 99 wt % after the BPMA/S film is treated at 91 degrees C for 6 h. Both of the corresponding doped polymers remain completely soluble in THF after irradiation and thermolysis. Cross-linking during the irradiation and heating is ascribed to formation of cater linkages (through abstraction of H atoms from -O-CH2-CH2-O- groups by acyloxy radicals) and combination of pendant acyloxy radicals with radical sites on neighboring chains; abstraction from benzylic carbon atoms along PS chains leads to scission. By contrast, irradiation and subsequent heating of BZMA-PS or BZAc-PS films results in more chain scissions than cross-linking since the average molecular weights are decreased. [References: 15]
机译:共聚物薄膜,11 wt%的1- {4-(2-甲基丙烯酰氧基乙氧基苯基} -2-苯基-1,2-乙二酮(BZMA)和苯乙烯(S)(BZMA / S)以及掺杂的聚苯乙烯(PS) BZMA单体(BZMA-PS)或1- {4-(2-乙酰氧基乙氧基-苯基)-2-苯基-1,2-乙二酮(BZAc-PS)的浓度已与共聚物的组成相匹配在室温下在分子氧的存在下进行辐照(λ> 400 nm),然后通过红外光谱分析BZMA和BZAc的消耗速率以及相应的含过氧化苯甲酰的单元(BPMA和BPAc)的同时形成。在三种薄膜类型中,苯甲醚组消耗量和过氧化物的形成相互匹配且基本相同,较高的氧气浓度增加了BZMA的消耗速率,根据动力学处理PS中两种氧气浓度的数据,得出结论是BZMA的光氧化速度是苯的10倍以上。在91摄氏度时, PS中BPMA和BPAc的热分解一级速率常数等于或大于BPMA / S共聚物中的常数。 BPMA / S的较低速率常数,以及PS中BPMA和BPAc的速率数据与单分子分解模型的较差拟合,可能归因于某些双分子分解,可能是由于过氧化物的聚集。没有迹象表明共聚物中存在双分子分解组分。来自BZMA / S辐射的很大一部分(91 wt%)BPMA / S是THF不溶的(即,交联的)。在BPMA / S膜在91摄氏度下处理6小时后,不溶部分增加至约99 wt%。辐照和热解后,两种相应的掺杂聚合物均保持完全溶于THF中。辐照和加热过程中的交联归因于餐饮链的形成(通过酰氧基从-O-CH2-CH2-O-基团中提取H原子)以及侧挂的酰氧基基团与相邻链上的自由基位点组合。沿着PS链从苄基碳原子中提取原子导致分裂。相反,由于平均分子量降低,BZMA-PS或BZAc-PS膜的辐照和随后加热导致的链断裂比交联多。 [参考:15]

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