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Anionic synthesis of block copolymers for photonics applications .

机译:阴离子合成嵌段共聚物在光子学中的应用。

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摘要

Anionic synthesis of well-defined polystyrene-block-polyvinylpyridine copolymers required the use of special conditions including lithium chloride and 1,1-diphenylethylene as additives, low temperature of reaction (-78°C), highly diluted monomer at -78°C and efficient stirring (Morton-type, creased reactor). Low molecular weight polystyrene-block-poly(2-vinylpyridine) copolymers (Mn = 6000 g/mol) were synthesized with average-molecular weights in agreement with the theoretically calculated Mns and narrow Mw/Mns (≤1.1). Polystyrene-block-polyvinylpyridine copolymers were selected for the fabrication of uniformly dispersed metal oxide nanoparticles (cobalt and iron oxides) due to the coordinating ligand character of the vinylpyridine units. The incorporation of the inorganic salts (1 mol-eq of inorg. salt per mol of vinylpyridine units) was 57 wt% when polystyrene- block-poly(2-vinylpyridine-co-4-vinylpyridine) (M n = 59,000 g/mol, Mw/Mn = 1.09, fv PVP = 0.19) was used and 18 wt% when polystyrene-block-poly(2-vinylpyridine) (Mn = 39,000 g/mol, Mw/Mn = 1.07, f v PVP = 0.14) was used.;The end-capping reaction of polymeric chain-ends with 1,1-diphenylethylene (DPE) was studied using 2D NMR spectroscopic and MALDI-TOF mass spectrometric analyses. Oligomerization of DPE was observed using a 15-fold excess of DPE in the end-capping of poly(butadienyl)lithium (Mn = 2,200 g/mol, Mw/Mn = 1.06) but not in the case of poly(styryl)lithium (Mn = 2,000 g/mol, Mw/Mn = 1.02). Although oligomerization of DPE has been previously reported in the synthesis of 1,1-diphenylhexyllithium (6-11% oligomer with 5.4-fold excess of DPE), there are no studies showing the presence of DPE oligomer in the end-capping reaction of polymeric living carbanions.;Additionally, the synthesis of poly(para-phenylene) has been studied using different precursor polymers [poly(1,3-cyclohexadienes) (Mn = 1,600 and 3,100 g/mol, Mw/Mn = 1.1 and 1.03) and poly(2-phenyl-1,3-cyclohexadiene) (Mn = 10,000 g/mol, Mw/Mn = 1.27) homopolymers] and dehydrogenating agents [2,3-dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) and 2,3,5,6-tetrachloro-1,4-benzoquinone (chloranil)] (4 mol-eq of benzoquinone per mol of cyclohexadiene unit). The results indicate that the efficiency of the dehydrogenation reaction was limited by precipitation of the polymer in the case of poly(1,3-cyclohexadiene). The advantage of using poly(2-phenyl-1,3-cyclohexadiene) lies in the formation of a soluble poly(2-phenyl-para-phenylene) with thermal stability and mechanical properties similar to those of the insoluble poly( para-phenylene) (TGAres [1000°C] = 40.2%).
机译:定义明确的聚苯乙烯-嵌段-聚乙烯基吡啶共聚物的阴离子合成需要使用特殊条件,包括氯化锂和1,1-二苯乙烯作为添加剂,反应温度低(-78°C),高度稀释的单体在-78°C和高效搅拌(莫顿型折痕反应器)。合成了平均分子量与理论计算的Mns和窄Mw / Mns(≤1.1)相一致的低分子量聚苯乙烯嵌段-聚(2-乙烯基吡啶)共聚物(Mn = 6000 g / mol)。由于乙烯基吡啶单元的配位特征,选择了聚苯乙烯嵌段-聚乙烯基吡啶共聚物用于制备均匀分散的金属氧化物纳米颗粒(钴和铁的氧化物)。当聚苯乙烯-嵌段-聚(2-乙烯基吡啶-co-4-乙烯基吡啶)(Mn = 59,000g / mol)时,无机盐的掺入(每摩尔乙烯基吡啶单元1摩尔当量的无机盐)为57重量%。 ,使用Mw / Mn = 1.09,fv PVP = 0.19),当使用聚苯乙烯嵌段聚(2-乙烯基吡啶)(Mn = 39,000 g / mol,Mw / Mn = 1.07,fv PVP = 0.14)时,使用18 wt%使用2D NMR光谱和MALDI-TOF质谱分析研究了聚合物链端与1,1-二苯乙烯(DPE)的封端反应。在聚(丁二烯)锂(Mn = 2,200 g / mol,Mw / Mn = 1.06)的封端中,使用15倍过量的DPE观察到DPE的低聚,但在聚(苯乙烯基)锂( Mn = 2,000g / mol,Mw / Mn = 1.02。尽管DPE的低聚反应先前已在1,1,1-二苯基己基锂的合成中报告(6-11%的低聚物,DPE的含量是5.4倍),但尚无研究表明在聚合物的封端反应中存在DPE的低聚物另外,已经使用不同的前体聚合物[聚(1,3-环己二烯)(Mn = 1,600和3,100 g / mol,Mw / Mn = 1.1和1.03)和聚(对-亚苯基)合成进行了研究。聚(2-苯基-1,3-环己二烯)(Mn = 10,000 g / mol,Mw / Mn = 1.27)均聚物]和脱氢剂[2,3-dichloro-5,6-dicyano-1,4-benzoquinone( DDQ)和2,3,5,6-四氯-1,4-苯醌(氯腈)(每摩尔环己二烯单元4摩尔当量的苯醌)。结果表明,在聚(1,3-环己二烯)的情况下,脱氢反应的效率受到聚合物沉淀的限制。使用聚(2-苯基-1,3-环己二烯)的优点在于形成具有与不溶性聚(对亚苯基)相似的热稳定性和机械性能的可溶性聚(2-苯基-对亚苯基) )(TGAres [1000°C] = 40.2%)。

著录项

  • 作者

    Garces Cortes, Camila.;

  • 作者单位

    The University of Akron.;

  • 授予单位 The University of Akron.;
  • 学科 Chemistry Polymer.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 261 p.
  • 总页数 261
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:36:52

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