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1.
以对苯二酚及对氟苯甲腈为原料, 合成了1,4-二(4-羧基苯氧基)苯, 再经磺化反应合成了1,4-二(4-羧基苯氧基)苯-2-磺酸钠(BCPOBS-Na), 并以4,4'-二羧基二苯醚(DCDPE)作为非磺化二酸单体与3,3'-二氨基联苯胺反应合成了一系列磺化聚苯并咪唑(SPBI). 通过红外光谱、 核磁共振及热重分析等手段对聚合物的结构及性能进行了分析. 研究了聚合物的特性黏度、 溶解性、 成膜性及聚合物薄膜的力学性能.  相似文献   

2.
以对苯二酚和对氟苯甲腈为原料, 合成了1,4-二(4-羧基苯氧基)苯, 并与4,4′-二羧基二苯醚作为共聚单体与3,3′-二氨基联苯胺反应合成了共聚型聚苯并咪唑, 通过红外光谱、核磁共振和热重分析等手段对聚合物的结构及热性能进行了分析. 研究了聚合物的黏度、溶解性、成膜性及聚合物薄膜的力学性能.  相似文献   

3.
将自制的4,4'-二氨基二苯醚-2,2'-二磺酸基(ODADS)、 含氮杂环芳香二胺1,2-二氢-2-(4-氨基苯基)-4-[4-(4-氨基苯氧基)-苯基]-二氮杂萘-1-酮(DHPZ-DA)和1,4,5,8-萘四甲酸二酐(NTDA)进行直接缩合聚合反应, 通过改变磺化二胺单体的含量来改变聚合物的磺化度, 成功地合成了一系列高分子量的不同磺化度的六元环聚酰亚胺(SPIs), 其特性粘度在0.55-1.47 dL/g. 采用FTIR和 1H NMR技术表征了聚合物的结构. 研究了经溶液浇铸成磺化聚合物膜的理化性质. 结果表明, 随着聚合物磺化度的增大, 膜的含水率和离子交换能力增大, 尺寸稳定性、 对水的稳定性以及抗氧化性降低.  相似文献   

4.
合成了一种刚性芳香二胺单体3,3',5,5'-四甲基-4,4'-二胺基苯基甲苯(BDAP),与6-氨基苯基-2-氨基苯并咪唑(BIA)组成混合二胺,分别与4种商品化的二酐单体(均苯四酸二酐(PMDA)、联苯四酸二酐(BPDA)、二苯酮四酸二酐(BTDA)和二苯醚四酸二酐(ODPA))一步法缩聚合成了一系列可溶性聚酰亚胺.采用FTIR,1H-NMR,UV-Vis,DMA和TGA等测试方法对所制备的聚酰亚胺进行了表征.结果表明,所制备的聚酰亚胺具有良好的溶解性能,能够在NMP和DMAc等常规溶剂中溶解;耐热性及力学性能优良,玻璃化转变温度超过410℃,分解温度在500℃以上.  相似文献   

5.
以苯酚和甲醛为原料,合成了双酚F(BPF)和双酚F二酐(BPFDA),用BPFDA分别和间苯二胺(m-PDA)、4,4'-二氨基二苯醚(4,4'-ODA)、1,4-(4-氨基苯氧基)苯(TPEQ)反应,得到了3种双酚F型聚酰亚胺,分别对其结构、溶解性、热性能和力学性能进行了表征.结果表明:聚合物的比浓对数黏度为0.5~...  相似文献   

6.
将磺化二胺单体4,4′-二(4-氨基苯氧基)联苯-3,3′-二磺酸(BAPBDS),含二氮杂萘酮结构的二胺1,2-二氢-2-(4-氨基苯基)-4-[4-(4-氨基苯氧基)-苯基]-二氮杂萘-1-酮(DHPZDA)和1,4,5,8-萘四甲酸二酐(NTDA)进行缩合聚合反应,通过改变磺化二胺单体BAPBDS的含量,合成了一系列不同磺化度的聚酰亚胺(SPIs).采用FT-IR,1H-NMR表征了聚合物的结构,热重分析仪(TGA)研究了聚合物的耐热稳定性.以间甲酚为溶剂,通过溶液浇铸法成膜研究了该系列聚合物膜的性能.结果表明,与其它磺化聚酰亚胺相比,该系列磺化聚酰亚胺的溶解性以及在高温下(80℃)水解稳定性有较大提高.  相似文献   

7.
基于苯醚型含氟二胺的聚酰亚胺膜材料的合成与表征   总被引:5,自引:0,他引:5  
4,4′-二羟基二苯醚和2-氯-5-硝基三氟甲苯经Williamson反应得到4,4′-双(4-硝基-2-三氟甲基苯氧基)二苯醚;在Pd/C-水合肼还原作用下得到4,4′-双(4-氨基-2-三氟甲基苯氧基)二苯醚(p-6FAPE).采用3种苯醚型含氟二胺1,4-双(3-氨基-5-三氟甲基苯氧基)苯、1,4-双(4-氨基-2-三氟甲基苯氧基)苯和p-6FAPE分别与3,3′,4,4′-二苯醚四酸二酐(ODPA)和均苯四甲酸二酐通过两步法制备出6种含氟聚酰亚胺(PI),对其溶解性、热性能和光学性能进行研究.这些PI具有较好的溶解性,且具有良好的热稳定性;ODPA基PI在可见光波长范围具有优良的透明性,450 nm处的透光率超过80%.  相似文献   

8.
采用离子交换法合成了以化学方式键合铅离子的二胺单体4,4'-二氨基-1,1'-联二苯-2,2'-二磺酸铅BDSA(Pb),并与二胺单体4,4'-二氨基-二苯醚(ODA),二酐单体均苯四甲酸酐(PMDA)在溶剂N-甲基-2-吡咯烷酮(NMP)中完成缩聚反应,通过改变2种二胺单体的摩尔比,采用热亚胺法和流延法逐层浇筑的工艺,制备出了一系列侧基键合铅离子的三明治结构的聚酰亚胺复合材料PI(Pb),试图解决传统物理共混方法制备的复合材料中易出现的铅元素分布不均匀、机械性能差的科学问题.实验结果表明:以纯PI为参照物,制备的PI(Pb)复合材料对~(241)Am(59.5 keV)、~(238)Pu(79.9、176.7 keV)等中低能γ射线具有很好的屏蔽效果,而且具备优良的耐辐照性能、优异的热稳定性能和良好的力学性能.  相似文献   

9.
采用含叔丁基二胺的单体3,3′-二叔丁基-4,4′-二氨基二苯基-4″-叔丁基苯基甲烷(TADBP)分别与萘-1,4-二甲酸、间苯二甲酸和4,4-二苯醚二甲酸3种二酸单体通过Yamazaki膦酰化法缩聚制得一系列新型可溶性芳香聚酰胺(PA)。通过FT-IR、~1 H-NMR、TG、DSC等测试手段研究了含叔丁基芳香聚酰胺的结构与性能,以及聚合物结构对其溶解性能、热性能的影响。结果表明:PA具有优异的溶解性能,常温下不仅能溶于高沸点的N-甲基吡咯烷酮(NMP)、N,N-二甲基乙酰胺(DMAc)、N,N-二甲基甲酰胺(DMF)、二甲基亚砜(DMSO)等强极性溶剂中,加热条件下甚至能溶于四氢呋喃、氯仿、二氯甲烷等低沸点溶剂;同时,PA还具有良好的热性能,玻璃化转变温度(Tg)为188~193℃,氮气氛围下失重5%和10%时的热失重温度分别为391~416℃和404~437℃。  相似文献   

10.
以对苯二酚为原料经过三步反应,合成了含叔胺取代基的二胺单体2,5-二((二甲氨基)亚甲基)-1,4-二(对氨基苯氧基)苯(DMAPB),并与1,4,5,8-四酸萘二酐(NTDA)、磺化二胺4,4'-二氨基二苯醚-2,2'-二磺酸(ODADS)高温聚合,通过改变磺化二胺单体(ODADS)的含量,制备了一系列具有不同磺化度的侧链含氮原子磺化聚酰亚胺.采用间甲酚为溶剂,通过溶液浇铸法制备成膜.由于将N-原子引入到聚酰亚胺的侧链,使得其与磺酸基更易形成较强的离子交联,从而有效地控制膜溶胀,提高了膜稳定性.新的磺化聚酰亚胺的热稳定性高达330℃并显示了良好的氧稳定性,其阻醇性能也得到了提高,在20℃下,膜的甲醇渗透系数为2.05×10-7至5.11×10-7cm2/s,远低于Nafion 117(2×10-6cm2/s)一个数量级.磺化度40%的磺化聚酰亚胺膜在100℃去离子水中测试1000 h以上仍能保持较好的机械性能.膜在高湿条件下也显示了良好的机械性能.然而,膜的质子传输率有所下降,这应该是较强的离子交联导致膜产生较致密的结构,减少了含水量并阻碍了水和H+的移动.同时,磺酸基与氮原子发生离子交联,减少了参与质子传输的磺酸基数量,降低了聚合物膜的酸性.  相似文献   

11.
新型芳香性螺双内酯聚合物的合成   总被引:1,自引:0,他引:1  
以间二甲苯和多聚甲醛为原料合成了芳香性螺双内酯单体———5 ,5′ 二甲酰氯 7 ,7′ 二氧 2 ,2′ 螺双( 苯并四氢呋喃) ,并通过常温溶液缩聚和界面缩聚合成了一系列聚酰胺和聚酯.研究了聚合物的核磁、红外光谱及其溶解性、热性能和聚酰胺薄膜的力学性能.含芳香性螺双内酯的聚酰胺在极性溶剂中具有良好的溶解性、高的热稳定性和一定的力学性能.  相似文献   

12.
A series of wholly aromatic sulfonated poly(ether amide)s (SPEAs) containing a sulfonic acid group on the dicarbonyl aromatic ring were prepared via a polycondensation reaction of sulfonated terephthalic acid (STA), terephthalic acid (TA), and aromatic diamine monomers. The degree of sulfonation was readily controlled by adjusting the monomer feed ratio of STA and TA in the polymerization process, and randomly sulfonated polymers with an ion exchange capacity (IEC) of 1.0–1.8 mequiv/g were prepared using this protocol. The chemical structures of randomly sulfonated polymers were characterized using NMR and FT‐IR spectroscopies. Gel permeation chromatography analysis of SPEAs indicated the formation of high‐molecular‐weight sulfonated polymer. Tough and flexible SPEA membranes were obtained from solution of N,N‐dimethylacetamide, and thermogravimetric analysis of these membranes showed a high degree of thermal stability. Compared with previously reported sulfonated aromatic polyamides, these new SPEAs showed a significantly lower water uptake of 10–30%. In proton conductivity measurements, ODA‐SPEA‐70 (IEC = 1.80 mequiv/g), which was obtained from polycondensation of 4,4′‐oxydianiline and 70 mol % STA, showed a comparable proton conductivity (105 mS/cm) to that of Nafion 117 at 80 °C. © 2008 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 47: 485–496, 2009  相似文献   

13.
This paper describes our work on the synthesis of a series of sulfonated homo‐/co‐polyimides (SPI) which were obtained by post‐sulfonation method over three steps. In the first step, 4,4′‐oxydianiline (ODA) and 4,4′‐diaminodiphenylsulfone (DDS) dissolved in N‐methyl pyrrolidone (NMP) were reacted with benzophenonetetracarboxylic dianhydride (BTDA) in order to yield poly(amic acid) (PAA). Secondly, precipitated PAA was sulfonated via concentrated sulfuric acid (95–98%) at room temperature to give post‐sulfonated PAA (PSPAA). Finally, PSPAA was converted into post‐sulfonated PI (PSPI) by the thermal imidization method. PSPIs with ion exchange capacity (IEC) ranging from 0.20 to 0.67 meq/g were prepared. The thermal properties of the PSPIs were evaluated and high desulfonation temperature was found in the range of 190–350°C, suggesting the high stability of sulfonic acid groups. In water, PSPI‐5 membrane displayed similar proton conductivity to Nafion®117, whereas this membrane showed poor conductivity in dry state. All PSPIs displayed good solubility in common polar aprotic solvents such as NMP and dimethylacetamide (DMAc). Furthermore, the effects of post‐sulfonation reaction on chemical structure, thermal oxidative behavior, and physical properties of the PSPI membranes such as membrane quality/stability and water uptake were discussed. Copyright © 2008 John Wiley & Sons, Ltd.  相似文献   

14.
Four novel polyamides have been prepared in high yields by the polycondensation reactions of bis(3-carboxyphenyl)- and bis(4-carboxyphenyl)phenylphosphine oxide with 3,3′- and 4,4′-diaminodiphenylsulfone. The thermal properties of these materials were studied using differential scanning calorimetry and thermogravimetric analysis. It was found that the presence of both phosphine oxide and sulfonyl groups within the polymer backbone brought about remarkable modifications in the thermal behavior. Glass transition temperatures 40–50°C lower than those of conventional polyamides i.e., in the range 170–200°C, were recorded. However, we observed greater thermooxidative stability (5% weight loss at >410°C) and high char yield upon prolonged heating at 800°C (20–34%). Also, good solubility in polar aprotic solvents was observed for all polyamides together with some solubility in aqueous solvent mixtures, e.g. tetrahydrofuran/water (95:5). © 1997 John Wiley & Sons, Inc.  相似文献   

15.
Soluble aromatic polyamides containing phthalazinone moieties were prepared. Those polymers were obtained from the solution polymerization of a new diacid containing phthalazinone moieties with various diamines. The new monomer, 2-(4-carboxyphenyl)-4-(4-carboxyphenoxy)phenyl-1(2H)phthalazinone(Ⅳ) was synthesized in a two-step reaction sequence. 2-(4-Cyanophenyl)-4-(4-cyanophenoxy)phenyl-1(2H)phthalazinone (Ⅲ) was prepared via the condensation reaction of 4-(4-hydroxyphenyl)-1(2H)phthalazinone (Ⅰ) with p-chlorobenzonitrile (Ⅱ). After (Ⅲ) was hydrolyzed, (Ⅳ) was acquired. The synthesized polyamides were characterized by means of viscosimetry, DSC, FT-IR, 1H NMR and EA. The polyamides have a high glass transition temperature which can be as high as 316 ℃. The polyamides also have good solubilities in some organic solvents.  相似文献   

16.
New sulfonated aromatic copolyimides with controlled degree of sulfonation were prepared via polycondensation reactions of a sulfonated diamine and two unsulfonated diamines with 1,4,5,8‐naphthalene tetracarboxylic dianhydride (NDA). The sulfonated diamine 3,3′‐disulfonic acid‐ bis[4‐(5‐amino‐1‐naphthoxy)phenyl]sulfone (DANPS) was synthesized through nucleophilic substitution reaction of 5‐amino‐1‐naphthol with disodium‐3,3′‐disulfonate‐4,4′‐dichlorodiphenysulfone (SDCDPS) and subsequent acidification. Two unsulfonated diamines 4,4′‐(5‐amino‐1‐naphthoxy)diphenylsulfone (ANDS) and 4,4′‐(4‐aminophenoxy)diphenylsulfone (APDS) were prepared by nucleophilic reaction of 5‐amino‐1‐naphthol and 4‐aminophenol with 4,4′‐dichlorodiphenylsulfone in the presence of potassium carbonate, respectively. After characterization of the monomers and polymers with common methods, the physical properties of the polymers including thermal behavior and stability, viscosity, molecular weight, and ion exchange capacity (IEC) were studied. The polymers showed high thermal stability and ion exchange capacity which were the basic requirements for application as fuel cell membranes. Copyright © 2008 John Wiley & Sons, Ltd.  相似文献   

17.
A new ether‐bridged aromatic dicarboxylic acid, 2′,5′‐bis(4‐carboxyphenoxy)‐p‐terphenyl ( 3 ), was synthesized by the aromatic fluoro‐displacement reaction of p‐fluorobenzonitrile with 2′,5′‐dihydroxy‐p‐terphenyl in the presence of potassium carbonate, followed by alkaline hydrolysis. A set of new aromatic polyamides containing ether and laterally attached p‐terphenyl units was synthesized by the direct phosphorylation polycondensation of diacid 3 with various aromatic diamines. The polymers were produced with high yields and moderately high inherent viscosities (0.44–0.79 dL/g). The polyamides derived from 3 and rigid diamines, such as p‐phenylenediamine and benzidine, and a structurally analogous diamine, 2′,5′‐bis(4‐aminophenoxy)‐p‐terphenyl, were semicrystalline and insoluble in organic solvents. The other polyamides were amorphous and organosoluble and could afford flexible and tough films via solution casting. These films exhibited good mechanical properties, with tensile strengths of 91–108 MPa, elongations to break of 6–17%, and initial moduli of 1.95–2.43 GPa. These polyamides showed glass‐transition temperatures between 193 and 252 °C. Most of the polymers did not show significant weight loss before 450 °C, as revealed by thermogravimetric analysis in nitrogen or in air. © 2004 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 42: 4056–4062, 2004  相似文献   

18.
Abstract

A new series of soluble aromatic polyamides was synthesized by low temperature solution polycondensation of novel aromatic diamine namely 3,5-bis-(4′-amino phenyl)-4-(4″-methoxy-2″-pentadecyl phenyl) 1,2,4-triazole (VII) with aromatic diacid chlorides, viz. isophthaloyl chloride (IPC) and terephthaloyl chloride (TPC). The aromaticdiamine (VII) was characterized by elemental analysis, FT-IR, NMR (1H, 13C), and mass spectrometry. Copolyamides were also synthesized by employing various mole proportions of IPC and TPC with diamine (VII). Inherent viscosities of these polyamides were in the range of 0.50–0.65 dL/g in DMAc, indicating formation of moderate to high molecular weight of polyamides. These polyamides showed good solubility in polar aprotic solvents such as N,N-Dimethyl acetamide (DMAc), N-Methyl 2-pyrrolidone (NMP), N, N, Dimethyl formamide (DMF), and Dimethyl sulphoxide (DMSO), which may be due to incorporation of pendant methoxyphenyl moiety with pentadecyl units. The amorphous morphology of polyamides as evidenced by XRD. These polyamides had lower glass transition temperatures; as determined by DSC, compared to the Tg of conventional aromatic polyamides due to internal plasticization effect of long alkyl pentadecyl group. Polymers showed good thermal stability, with initial decomposition temperature above 300?°C.  相似文献   

19.
以4-(3,5-二甲基-4-羟基苯基)2,3-二氮杂萘-1-酮,3,3′-二磺酸钠-4,4′-二氟苯甲酮和4,4′-二氯二苯砜为原料,利用亲核缩聚反应,通过改变磺化单体的含量,制备出一系列不同磺化度的杂萘联苯聚醚砜酮(SPPESK-DM).采用FTIR、1H-NMR表征了聚合物的结构,热失重分析仪研究了聚合物的耐热稳定性,以N-甲基-2-吡咯烷酮为溶剂采用溶液浇铸法成膜研究该系列聚合物膜的性能.结果表明,SPPESK-DM磺酸基的热分解温度在260℃以上,主链分解温度在410℃以上;膜的吸水率、溶胀率、离子交换容量和质子传导率均随着磺化度的增大而增大,磺化度为1.0的SPPESK-DM50的质子传导率达到1.08×10-2S/cm(85℃),且甲醇渗透系数为2.06×10-7cm2/s,低于Nafion117膜的甲醇渗透系数(2×10-6cm2/s).此系列膜的耐氧化性比较优异,可望用于质子交换膜燃料电池中.  相似文献   

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