利用离子液体在软性条件下加工对苯二甲酸的新策略

Geetha Bolla , Amrita Nayak , Gregory Chatel , Varun Debbeti , C. Corey Hines , Steven P. Kelley , Thomas P. Vaid , Allan S. Myerson , Robin D. Rogers
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Using either zwitterionic carboxylate IL-precursors or direct salt formation with carboxylate ILs or amines, a series of salts of mono, dibasic and two ionic cocrystals were obtained including monobasic, [C<sub>1</sub>C<sub>1</sub>im][HTPA], [N<sub>4441</sub>][HTPA], [C<sub>4</sub>C<sub>1</sub>im][HTPA]•0.5H<sub>2</sub>TPA (a cocrystal), and [C<sub>1</sub>Him][HTPA] ([C<sub>1</sub>C<sub>1</sub>im]<sup>+</sup> = 1,3-dimethylimidazolium, [N<sub>444</sub><sub>1</sub>]<sup>+</sup> = tribuytlmethylammonium, [C<sub>1</sub>Him]<sup>+</sup> = 1-methyl-3-H-imidazolium), dibasic [C<sub>1</sub>C<sub>1</sub>im]<sub>2</sub>[TPA], [C<sub>4</sub>C<sub>1</sub>im]<sub>2</sub>[TPA], [N<sub>4444</sub>]<sub>2</sub>[TPA], [C<sub>1</sub>Him]<sub>2</sub>[TPA], [H<sub>2</sub>N<sub>22</sub>]<sub>2</sub>[TPA], [H<sub>3</sub>N<sub>6</sub>]<sub>2</sub>[TPA], and [HN(CH<sub>2</sub>CH<sub>2</sub>OH)<sub>3</sub>]<sub>2</sub>[TPA] ([C<sub>4</sub>C<sub>1</sub>im]<sup>+</sup> = 1-butyl-3-methylimidazolium, [N<sub>4444</sub>]<sup>+</sup> = tetrabuylammonium, [H<sub>3</sub>N<sub>6</sub>]<sup>+</sup> = hexylammonium, [HN(CH<sub>2</sub>CH<sub>2</sub>OH)<sub>3</sub>]<sup>+</sup> = triethanolammonium, [H<sub>2</sub>N<sub>22</sub>]<sup>+</sup>= diethylammonium), and a second cocrystal [C<sub>2</sub>C<sub>1</sub>im]Cl•0.5H<sub>2</sub>TPA. 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引用次数: 0

摘要

对苯二甲酸(H2TPA)在多种浓度的离子液体(ILs)中的溶解度在较低温度和压力下高于任何其他已知溶剂,这表明有可能以低能耗从其主要杂质 4-羧基苯甲醛(4-CBA)中提纯 H2TPA。为了了解其机理,研究人员探索了几种策略,利用惰性离子对 H2TPA 的高溶解能力,在独特盐类和共晶体的结晶过程中提纯 H2TPA。利用齐聚物羧酸盐 IL 前体或与羧酸盐 IL 或胺直接成盐,获得了一系列单盐、二盐和两种离子共晶体,包括单盐、[C1C1im][HTPA]、[N4441][HTPA]、[C4C1im][HTPA]-0。5H2TPA(一种共晶体)和[C1Him][HTPA]([C1C1im]+ = 1,3-二甲基咪唑鎓,[N4441]+ = 三丁基甲基铵、[C1Him]+=1-甲基-3-H-咪唑鎓)、二元[C1C1im]2[TPA]、[C4C1im]2[TPA]、[N4444]2[TPA]、[C1Him]2[TPA]、[H2N22]2[TPA]、[H3N6]2[TPA]和[HN(CH2CH2OH)3]2[TPA]([C4C1im]+ = 1-丁基-3-甲基咪唑鎓,[N4444]+ = 四丁基铵、[H3N6]+=己铵,[HN(CH2CH2OH)3]+=三乙醇胺,[H2N22]+=二乙基铵),以及第二种共晶体 [C2C1im]Cl-0.5H2TPA。这些盐的形成表明提纯 H2TPA 的方法是可行的,因为在低能量条件下盐会优先形成。使用 1-乙基-3-甲基氯化咪唑鎓([C2C1im]Cl)的一条优雅路线特别有前景,因为共晶体 [C2C1im]Cl-0.5H2TPA 很容易分离出来,而且在环境条件下很容易解离成结晶 H2TPA 和水合 [C2C1im]Cl 液体。
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Novel strategies for terephthalic acid processing under soft conditions using ionic liquids

Terephthalic acid (H2TPA) solubility in several ionic liquids (ILs) at multiple concentrations is higher than for any other known solvents at lower temperatures and pressures which suggests low energy purification of H2TPA from its major impurity, 4-carboxybenzaldehyde (4-CBA) might be possible. To understand the mechanism several strategies were explored to purify H2TPA by taking advantage of this high solubilizing power of ILs for H2TPA in the crystallization of unique salts and cocrystals. Using either zwitterionic carboxylate IL-precursors or direct salt formation with carboxylate ILs or amines, a series of salts of mono, dibasic and two ionic cocrystals were obtained including monobasic, [C1C1im][HTPA], [N4441][HTPA], [C4C1im][HTPA]•0.5H2TPA (a cocrystal), and [C1Him][HTPA] ([C1C1im]+ = 1,3-dimethylimidazolium, [N4441]+ = tribuytlmethylammonium, [C1Him]+ = 1-methyl-3-H-imidazolium), dibasic [C1C1im]2[TPA], [C4C1im]2[TPA], [N4444]2[TPA], [C1Him]2[TPA], [H2N22]2[TPA], [H3N6]2[TPA], and [HN(CH2CH2OH)3]2[TPA] ([C4C1im]+ = 1-butyl-3-methylimidazolium, [N4444]+ = tetrabuylammonium, [H3N6]+ = hexylammonium, [HN(CH2CH2OH)3]+ = triethanolammonium, [H2N22]+= diethylammonium), and a second cocrystal [C2C1im]Cl•0.5H2TPA. The formation of these salts suggest a viable method to purify H2TPA because of preferred salt formation at low energy conditions. One elegant route using 1-ethyl-3-methylimidazolium chloride ([C2C1im]Cl) could be especially promising because the cocrystal [C2C1im]Cl•0.5H2TPA was readily isolated and is easily dissociated when exposed to ambient conditions into crystalline H2TPA and a liquid of hydrated [C2C1im]Cl.

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