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1.
采用无溶剂法合成了新型双酚A和双酚AF(六氟双酚A)基手性和消旋苯并噁嗪单体,利用红外光谱(FTIR)、核磁共振氢谱(1H-NMR)、旋光仪和高效液相色谱(HPLC)对单体结构和性质进行了表征,通过差式扫描量热仪(DSC)和热重分析仪(TGA)对苯并噁嗪的固化行为及聚合物的热性能进行了研究.结果表明,无溶剂法合成苯并噁嗪单体具有反应速度快、产率高、对环境友好等特点;双官能度消旋苯并噁嗪单体由内消旋和外消旋异构体组成,且内消旋苯并噁嗪单体含量高于外消旋;手性和消旋苯并噁嗪单体具有相同的开环聚合行为;由于消旋苯并噁嗪分子的立体构型不同,使得聚苯并噁嗪的自由体积减小,分子链的堆积更加致密,因而消旋聚苯并噁嗪的玻璃化转变温度(Tg)和热稳定性均高于手性聚苯并噁嗪和传统的双酚A-苯胺型聚苯并噁嗪;此外,C—F键具有高的解离能,因而双酚AF基聚苯并噁嗪的热性能显著提高.  相似文献   

2.
以邻烯丙基双酚A、多聚甲醛和烯丙基胺为原料,采用无溶剂的方法合成了一种不含β-氢的苯并噁嗪(2,2-二(3,8-二烯丙基-3,4-二氢-2H-1,3-苯并噁嗪)-丙烷(B—dbo).GPC和元素分析结果表明,此噁嗪中间体主要是单量体和二聚体.用FTIR和^1H NMR对中间体结构进行了表征.结果表明,此苯并噁嗪的分子结构中存在三种反应官能团:噁嗪环、N-烯丙基、Ar-烯丙基.用DSC和FTIR研究三种反应基团在固化时的反应情况.将双酚A、邻烯丙基双酚A、TiCl4和PCl5作为催化剂按适量的比例加入B—dbo中,用DSC研究其固化行为,并对TiCl4催化试样在不同的固化温度下进行FTIR测试分析,提出在TiCl4催化下苯并噁嗪环副反应及开环固化机理.  相似文献   

3.
以双螺环取代三聚磷腈基双苯甲酰氯和4-氨基(N-苯基)苯并噁嗪单体为原料合成了一种含双螺环取代三聚磷腈结构单元的苯并噁嗪树脂单体(HCP-5);采用傅立叶变换红外光谱仪(FT-IR)和核磁共振谱仪(1 H NMR,13 C NMR,31P NMR)表征了苯并噁嗪树脂单体的结构,基于FT-IR和示差扫描量热法研究了其固化行为,并利用热重分析和示差热重分析研究了HCP-5树脂单体、均聚物及其与双酚A型苯并噁嗪树脂(Bz)共聚物的热稳定性.结果表明,HCP-5均聚物具有很好的热稳定性和成炭性,其在317℃下的热失重为5%,在800℃下的残炭率为50%,可用于普通苯并噁嗪树脂改性.此外,HCP-5/Bz(1∶1;质量分数)共聚物在332℃下的热失重为5%,在800℃下的残炭率为48%.  相似文献   

4.
通过四步法合成了对炔丙氧基苯基噁唑啉(p-propynyloxyphenyl-2-oxazoline简称POPO),采用核磁共振氢谱(1H-NMR)、傅立叶红外光谱(FTIR)、气相色谱质谱联用仪(GC-MS)和元素分析证实了其分子结构,以示差扫描量热仪(DSC)和热重分析(TGA)揭示了其固化行为和热分解性质,该化合物熔点为120℃,起始固化温度为200℃,固化峰值温度为280℃,自固化产物5 wt%热失重温度为321℃.在此基础上,通过溶液共混法制备了双酚A型苯并噁嗪(BZ)/对炔丙氧基苯基噁唑啉(POPO)共聚树脂,且对其固化机理、固化产物的热分解性质和动态力学性能进行考察.结果表明,该噁唑啉作为交联剂,与苯并噁嗪发生开环聚合和自身炔基发生三聚成环反应,使固化产物的交联密度增加,DSC、TG和动态热机械分析(DMA)表明噁唑啉的引入提高了固化树脂的热性能和动态力学性能.且在噁唑啉含量为10 wt%时,固化树脂的综合性能较优,较之纯的双酚A型苯并噁嗪树脂,起始固化温度从215℃降低至180℃,残碳率从28%提高至44%,玻璃化转变温度从166℃提高至186℃.  相似文献   

5.
聚苯并噁嗪是近二三十年发展起来的一类新型热固性树脂.其重复单元是含氮、氧杂环结构的化合物,高温下可在无催化剂的情况下发生开环反应形成聚合物.聚苯并噁嗪具备熔体黏度低、易加工、成型收缩率接近零以及固化过程无挥发性物质产生等独特的优点,同时还保持了传统酚醛树脂优良的热稳定性、电绝缘性和机械性能.苯并噁嗪单体最大的优点在于其分子设计的灵活性,通过设计反应底物或者控制固化工艺可合成各种具有特定结构和性质的苯并噁嗪单体和树脂.主要从单官能度、双官能度、多官能度三方面概述了几种苯并噁嗪单体的类型及其合成方法.  相似文献   

6.
含硅芳炔树脂/苯并噁嗪/氰酸酯三元聚合体系研究   总被引:1,自引:0,他引:1  
以双酚A型氰酸酯(BADCy)和含炔丙氧基苯并噁嗪(P-appe)为改性剂,通过与含硅芳炔树脂(PSA)的溶液混合与浓缩制备了含硅芳炔树脂/氰酸酯/苯并噁嗪三元共混体系(PPB),研究了该共混体系的热固化过程、共混树脂的热稳定性和动态力学性能、弯曲性能和冲击性能.结果表明,开环后的苯并噁嗪能催化氰酸酯的环三聚反应,可降低氰酸酯的固化温度;PPB热固化中三嗪环可与噁嗪环反应形成氰酸酯与苯并噁嗪共聚;当PPB树脂中PSA树脂的质量分数为70%时,三元共混树脂浇铸体在氮气中质量损失5%的温度(Td5)高于500oC,玻璃化转变温度高于450oC;BADCy/P-appe改性PSA树脂的三元共混体系相容性好,共混树脂浇铸体PPB-5的弯曲强度较PSA树脂提高了115%,冲击强度提升了104%,断裂面出现明显的韧性断裂特征.  相似文献   

7.
聚芴基苯并唑类共聚物的合成和光物理性能   总被引:1,自引:1,他引:0  
通过溶液缩聚法合成了一系列不同组分的无规共聚物--聚对苯撑苯并二噁唑-co-聚(9,9-二辛基芴苯并二噁唑)(PBO-co-PBOF).利用X射线衍射、紫外-可见光吸收光谱、光致荧光光谱研究了不同组分和结构变化对聚合物形态和光物理性能的影响.结果表明:聚合物主链上辛基芴基团的引入使聚合物结构从晶态转变为非晶态.共聚物分...  相似文献   

8.
合成并表征了4种具有Brnsted酸性的磺酸功能化咪唑类离子液体催化剂,考察了其在催化苯酚、甲醛合成双酚F反应中的催化活性.结果表明磺酸功能化双核离子液体双-(3-磺酸丙基-1-咪唑)亚丁基硫酸氢盐([DPSIM][HSO4]2)不仅催化活性最佳,还提高了4,4’-双酚F异构体的含量.以[DPSIM][HSO4]2为催化剂,在苯酚与甲醛摩尔比30∶1、离子液体催化剂质量浓度6.8%、反应温度90℃、反应时间60 min的优化条件下,双酚F收率可达94.1%,同时提出了其催化合成双酚F的反应机理.该离子液体催化剂腐蚀性低,易分离回收,在重复使用6次后,双酚F收率仍在70%以上.  相似文献   

9.
以双酚化合物及对卤苯酚为起始原料,经用苄基保护、乌尔曼成醚、选择性硝化和还原脱保护4步反应,合成了具有双酚芳香醚结构的4个新型聚苯并噁唑单体:双(3-氨基-4-羟基苯基)双酚醚类化合物的盐酸盐。 确定了乌尔曼成醚反应的最佳工艺条件,证明硝化反应只发生在对卤苯酚苄保护基的邻位,改进了还原脱保护反应的成盐及后处理条件,提高了产物的质量和收率,4步反应总收率可达54.0%。 采用红外光谱、核磁共振H谱和高分辨质谱表征了每步产物的化学结构。  相似文献   

10.
苯并双噁唑类聚合物的合成   总被引:1,自引:0,他引:1  
详细介绍了以4,6-二氨基间苯二酚盐酸盐(DADHB)为原料,采用多聚磷酸法、三甲基硅烷基化法、中间相聚合法、单体成盐法合成聚对苯撑苯并双噁唑(PBO),还有以4,6-二硝基间苯二酚(DNR)为原料,先选择还原制得4-氨基-6-硝基间苯二酚盐酸盐,进而与对甲氧羰基苯甲酰氯进行缩环合获得苯并噁唑化合物,再催化加氢合成AB型PBO新单体2-(对甲氧羰基苯基)-5-氨基-6-羟基苯并噁唑,最后自缩聚反应制备PBO的新路线.另外,本文还介绍了直链烯烃型、直链脂肪烷烃型、稠环芳烃型、联苯取代基型、杂环型、聚醚型等苯并双噁唑类聚合物的合成方法.  相似文献   

11.
以苯酚、甲醛、带环氧基团纳米二氧化硅(RNS-E)为原料,采用原位聚合法合成了RNS-E改性酚醛树脂.利用红外光谱(FT-IR)对其结构进行了分析,并利用热重分析(TGA)对其热性能进行了研究.结果表明,改性后的酚醛树脂热稳定性得到提高,当RNS-E的加入量为4%时(质量分数),失重10%时的热分解温度(t10%)较酚醛树脂的提高了15℃,1 000℃下残炭率较酚醛树脂提高了7%.  相似文献   

12.
A novel bisphenol-AP-aniline-based benzoxazine monomer (B-AP-a) was synthesized from the reaction of 4,4′-(1-phenylethylidene) bisphenol (bisphenol-AP) with formaldehyde and aniline. The chemical structures were identified by FT-IR, 1H and 13C NMR analyses. The polymerization behavior of the monomer and the types of hydrogen bonding species were monitored by differential scanning calorimetry (DSC) and FT-IR. The curing kinetics was studied by isothermal DSC and the isothermal kinetic parameters were determined. The thermal properties of cured benzoxazine were measured by DSC and thermogravimetric analysis (TGA). The bisphenol-AP-aniline-based polybenzoxazine (poly(B-AP-a)) exhibited higher glass transition temperature (Tg) and better thermal stability than corresponding bisphenol A-aniline-based polybenzoxazines (poly(BA-a)). The Tg value of poly(B-AP-a) is 171 °C. The temperatures corresponding to 5% and 10% weight loss is 317 and 347 °C, respectively, and the char yield is 42.2% at 800 °C. The isothermal curing behavior of B-AP-a displayed autocatalysis and diffusion control characteristics. The modified autocatalytic model showed good agreement with experimental results.  相似文献   

13.
A novel class of low-viscosity benzoxazines has been synthesized from melamine and formaldehyde with phenol or bisphenol A. The striking feature of the class of benzoxazines is the subtle combination of their inherently low viscosity at room temperature, good film-forming characteristics and high chemical and thermal stability mainly due to the introduction of melamine into the network of the polymers. The structure of the benzoxazines has been confirmed by proton nuclear magnetic resonance spectroscopy and fourier transform infrared spectroscopy. Thermal properties of polybenzoxazine have been studied by differential scanning calorimetry, dynamic mechanical analysis and thermogravimetric analysis. Transparent polybenzoxazine films were easily obtained under solvent-free conditions, exhibiting significantly improved toughness compared to the conventional polybenzoxazines. Our research may open a new path for overcoming the present drawbacks of polybenzoxazines such as high brittleness, the difficulties in preparing films and poor processibility via tailoring the structures and properties of amine in the benzoxazines.  相似文献   

14.
A trifunctional benzoxazine, 1,3,5‐tris(3‐phenyl‐3,4‐dihydro‐2H‐benzo[1,3]oxazin‐6‐yl)benzene (T‐Bz) was synthesized and in an effort to reduce its curing temperature (curing maxima at 238 °C), it was mixed with various phenolic nucleophiles such as phenol (PH), p‐methoxy phenol (MPH), 2‐methyl resorcinol (MR), hydroquinone (HQ), pyrogallol (PG), 2‐naphthol (NPH), 2,7‐dihydroxy naphthalene (DHN), and 1,1'‐bi‐2‐naphthol (BINOL). The influence of these phenolic nucleophiles on ring‐opening polymerization temperature of T‐Bz was examined by DSC and FTIR analysis. T‐Bz undergoes a complete ring‐opening addition reaction in the presence of bi‐ and trifunctional phenolic nucleophiles (MR/HQ/PG/DHN) at 140 °C (heated for 3 h) and forms a networked polybenzoxazine (NPBz). The NPBzs showed a high thermal stability with Td20 of 350–465 °C and char yield of 67–78% at 500 °C; however, a diminutive weight loss (6.9–9.8%) was observed at 150–250 °C (Td5: 215–235 °C) due to degradation of phenolic end groups. This article also gives an insight on how the traces of phenolic impurities can alter the thermal properties of pure benzoxazine monomer as well as its corresponding polymer. © 2016 Wiley Periodicals, Inc. J. Polym. Sci., Part A: Polym. Chem. 2016 , 54, 2811–2819  相似文献   

15.
A bifunctional benzoxazine monomer, 6,6′‐bis(3‐allyl‐3,4‐dihydro‐2H‐benzo[e][1,3]oxazinyl) sulfone (BS‐ala), was synthesized from bisphenol‐S, allylamine and formaldehyde via a solution method. The chemical structure of BS‐ala was confirmed by 1H and 13C nuclear magnetic resonance (NMR) spectroscopy, Fourier transform infrared (FTIR) spectroscopy, and elemental analysis. The polymerization behavior of BS‐ala was investigated by FTIR, solid‐state 13C NMR, and differential scanning calorimetry (DSC). The oxazine ring opening polymerization is prior to the addition polymerization of allyl group, and the exothermic peaks corresponding to the two reactions appear partially overlapped in the DSC curve. The storage modulus of the resultant polybenzoxazine at 25°C is about 3.9 GPa, and the glass transition temperature is 254°C. The 5% and 10% weight loss temperatures of the polybenzoxazine are about 335°C and 361°C in both air and nitrogen, respectively. The char yield is about 58% at 800°C in nitrogen, whereas almost no residue is remained at 700°C in air. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

16.
A series of fluorene‐based benzoxazine copolymers were synthesized from the mixture of 9,9‐bis(4‐hydroxyphenyl)fluorene and bisphenol A, and 4,4′‐diaminodiphenyloxide and paraformaldehyde. And the cured polybenzoxazine films derived from these copolymers were also obtained. Fourier transform infrared spectroscopy (FTIR) and hydrogen nuclear magnetic resonances confirmed the structure of these benzoxazines. Their molecular weight was estimated by gel permeation chromatography. The curing behavior of the precursors was monitored by FTIR and differential scanning calorimetry. Dynamic mechanical analysis and thermogravimetric analysis were performed to study the thermal properties of the cured polymers. The cured polybenzoxazines exhibit excellent heat resistance with glass transition temperatures (Tg) of 286–317°C, good thermal stability along with the values of 5% weight loss temperatures (T5) over 340°C, and high char yield over 50% at 800°C. The mechanical properties of the cured polymers were also measured by bending tests. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

17.
以生物基糠胺、 酚酞和多聚甲醛为原料, 制备了一种新型生物基苯并噁嗪树脂——酚酞糠胺型苯并噁嗪树脂(PPTL-F-BOZ), 采用FTIR, 1H NMR和 13C NMR等手段对其单体PTL-F-BOZ的结构进行了表征, 并对其固化反应、 耐热和阻燃性能进行分析. 结果表明, 与传统的化石基双酚型苯并噁嗪——双酚A苯胺型苯并噁嗪(BPA-A-BOZ)相比, PTL-F-BOZ显示出较低的固化反应温度, 且糠胺中呋喃环的存在会增加聚合物的交联密度, 并减缓苯氧结构向苯酚结构的重排反应, 致使其在DSC曲线中出现了2个固化峰. PPTL-F-BOZ树脂具有较高的T5%(质量损失5%的温度)和800 ℃的残炭率, 其极限氧指数(LOI)高达36.2%, 在垂直燃烧中达到V-0等级, 表现出优异的热稳定性和阻燃性能.  相似文献   

18.
首先用γ-环氧丙氧基三甲氧基硅烷(KH-560)和亚磷酸二乙酯(DEP)反应的中间产物进行水解缩合反应,合成了一种含磷低聚硅氧烷杂化物.并用FTIR,NMR,GPC对其结构及分子量进行了表征.然后将含磷低聚硅氧烷引入到双酚A环氧树脂(E-54)制备硅磷杂化物环氧树脂的固化物.对这种含硅磷杂化物环氧树脂固化物的性能研究发现其极限氧指数为23~29,DSC分析结果玻璃化转变温度(Tg)可以达到204℃,失重5%的温度(Td)5%比纯E-54提高近20℃.该固化物具有阻燃性能,同时具有较好的热性能。  相似文献   

19.
首先采用格氏试剂法合成了甲基三苯乙炔基硅烷(MTPES),通过傅里叶变换红外光谱(FT-IR)、核磁共振氢谱(1 H-NMR)对其结构进行了表征。然后以MTPES和4,4’-二叠氮甲基联苯(BAMBP)为原料制备了新型聚三唑树脂(MPTA)。利用FT-IR和差示扫描量热(DSC)研究了MPTA树脂的固化行为,通过动态力学热分析(DMA)和热重分析(TG)研究了炔基与叠氮基配比对树脂热性能的影响,并通过测试凝胶时间随贮存时间的变化研究了树脂及其四氢呋喃(THF)溶液的贮存稳定性。结果表明,固化后的树脂玻璃化转变温度(Tg)达到236℃,在氮气中的5%热失重温度(T_(d5))在320℃左右。MPTA树脂在35℃和25℃下分别贮存7d和20d后,100℃下树脂的凝胶时间分别为40min和25min,MPTA树脂的THF溶液在同样条件下贮存28d后,凝胶时间分别为54min和61min,具有比现有聚三唑树脂更好的贮存稳定性。单向T700碳纤维-MPTA复合材料常温下的弯曲强度为1 660 MPa,弯曲模量为129 GPa,150℃下的弯曲强度保留率为70%。  相似文献   

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