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1.
设计并合成了一种新型的香豆素衍生物,3,3-’(1,3-苯基)双(7-乙氧基-4-甲基香豆素)(mEMCB),并系统地对该香豆素衍生物进行了结构表征、光物理性能、热物理性能及电化学性能的研究.mEMCB具有较高的三重态能级(2.42eV),可敏化绿色、红色磷光掺杂材料.同时,mEMCB还具有较好的热稳定性(Tg:79.72℃,Td:361.49℃),其Tg明显高于目前广泛使用的磷光主体材料CBP.研究结果表明,mEMCB是一个潜在的可以用于绿色和红色磷光有机电致发光器件的主体材料.  相似文献   

2.
刘勇军  钟鸣  宋琤  盛寿日  侯豪情  宋才生 《应用化学》2018,35(11):1289-1294
以苯酚、对二溴苯及苯基磷酰二氯为原料合成出二(4-苯氧基苯基)苯基氧磷(BPOPPO)。 三氯化铝(AlCl3)为催化剂,通过缩聚反应,BPOPPO与对苯二甲酰氯(TPC)反应制备出一种含有三苯基氧磷结构的聚醚醚酮酮(P-PEEKK)树脂。 采用傅里叶变换红外光谱仪(FT-IR)、差示扫描量热仪(DSC)、热重分析仪(TGA)和广角X射线衍射(WAXD)等技术手段对P-PEEKK树脂的结构和性能进行表征。 结果表明,P-PEEKK树脂属于非晶聚合物,玻璃化转变温度(Tg)较高,为190.5 ℃;热分解温度(T5%)为515 ℃,耐热性能较好;极限氧指数(LOI)为42,阻燃性能好,为难燃材料;易溶解于氯仿、1,2-二氯乙烷、N,N-二甲基乙酰胺等有机溶剂中,溶解性能较好,便于涂膜加工;拉伸强度为62 MPa,力学性能较好。  相似文献   

3.
聚酰亚胺(PI)薄膜作为柔性有机发光显示(OLED)基板材料应用时, 需要满足玻璃化转变温度(Tg)大于450 ℃和热膨胀系数(CTE)在0~5×10-6 K-1之间. 为了提高PI薄膜的热性能, 本文合成了2,7-占吨酮二胺 (2,7-DAX), 并将其与均苯四甲酸二酐(PMDA)和2-(4-氨基苯基)-5-氨基苯并噁唑(BOA)共聚制备了一系列新型PI薄膜. 研究了PI薄膜的聚集态结构、 耐热性能、 尺寸稳定性和力学性能. 结果表明, 占吨酮结构和苯并噁唑结构提高了PI分子链的刚性与线性, 使分子链在平面内紧密堆积与取向, 制备的PI薄膜综合性能优异, 玻璃化转变温度高于408 ℃, CTE在-5.0×10-6~8.1×10-6 K-1之间, 拉伸强度大于140 MPa, 拉伸模量大于4.2 GPa, 断裂伸长率为7.1%~20%, 5%热失重分解温度(T5%)在601~624 ℃之间. 其中, PI-50和PI-60薄膜具有超高玻璃化转变温度和超低热膨胀系数, Tg高于450 ℃, CTE分别为2.1×10-6 K-1和1.6×10-6 K-1. 制备的系列PI薄膜作为柔性OLED基板材料有潜在应用前景.  相似文献   

4.
制备了双酚A环氧丙烯酸酯(EA)/阻燃剂(POP-290,聚合物聚醚多元醇)/活性单体阻燃UV涂料,主要考察了不同用量的阻燃剂对丙烯酸酯UV涂料的阻燃性能和光固化的影响.研究结果表明,阻燃剂的使用提高了UV涂料体系的固化速度、凝胶含量及玻璃化转变温度(Tg).当m(EA):m(活性单体)=4:1,POP-290含量为7%(质量分数)时,水平燃烧等级达到FH-1,LOI从原来的21提高到26.  相似文献   

5.
苗中硕  门永锋 《应用化学》2020,37(6):642-649
采用快速扫描量热法(FSC)结合传统的差示扫描量热仪(DSC)考察了聚对苯二甲酸-1,4-环己烷二甲醇酯(PCT)聚酯在接近玻璃化转变(Tg)和熔融温度(Tm)范围(100~270 ℃)的结晶和熔融行为。 较大过冷度时PCT聚酯结晶较快,FSC有效地抑制降温过程结晶的发生,而较低过冷度下传统DSC可以避免样品降解对实验结果的影响,二者的结合能很好地对PCT聚酯结晶动力学进行测量,实验结果表明在175 ℃时结晶速率最快。 并且利用Flash DSC对等温结晶温度下形成的片晶熔点进行加热速率的相关测量,在熔融动力学建模的基础上进行校准,以确定零加热速率下片晶的熔点。 Hoffman-Weeks方程中Tm与结晶温度(Tc)的线性关系与Tc=Tm的交点给出了PCT晶体的平衡熔融温度$T_m^o$为315 ℃。  相似文献   

6.
耐高温可溶性聚酰亚胺树脂及其复合材料   总被引:1,自引:0,他引:1  
制备了2种耐高温可溶型聚酰亚胺树脂(PI-1, PI-2)及其复合材料, 系统研究了树脂的工艺性, 纯树脂固化物的热性能及其复合材料的界面形貌、 介电性能和力学性能. 研究结果表明, 树脂低聚物在极性非质子溶剂中具有良好的溶解性, 且熔体黏度较低, 表明其具有优异的加工性能. 两种树脂固化物在空气中的5%热失重温度均高于550 ℃, PI-1树脂的玻璃化转变温度(Tg)为430 ℃, PI-2树脂的Tg为380 ℃. 石英纤维/PI-1和石英纤维/PI-2复合材料具有较低的介电常数和介电损耗. 碳纤维/PI-1复合材料在420 ℃下的弯曲强度保持率可达62%, 层间剪切强度保持率可达48%, 具有较优异的高温力学性能. 采用普通模压工艺制备了厚度高达45 mm的复合材料制件, 进一步证明这2种树脂具有优异的工艺性.  相似文献   

7.
蔡毅  郭洪辰  曹瀚  高凤翔  周庆海  王献红 《应用化学》2019,36(11):1248-1256
CO2基塑料(PPC)是通过CO2与环氧丙烷共聚所得的生物降解高分子,由于PPC的耐紫外老化性能较差,随紫外线的照射不仅PPC的相对分子质量快速下降,且其拉伸强度和断裂伸长率等力学性能也迅速降低,而农用地膜长期处于紫外线照射的环境中,因此亟待改善PPC的耐紫外老化性能。 本文设计合成了含紫外吸收基团的单体2-羟基-4(2,3-环氧丙氧基)二苯甲酮(HEB),与CO2和环氧丙烷进行三元共聚制备了耐紫外光老化的CO2共聚物(PPCH)。 在保证PPCH相对分子质量不低于5.0×104的前提下,PPCH中HEB单元的摩尔分数最高可达0.32%,相应地其玻璃化转变温度(Tg)和起始热分解温度(Td-5%)分别为26.7和216.9 ℃,拉伸强度达到30.97 MPa。 普通PPC经过240 h的紫外辐照后,其数均相对分子质量下降了67.8%,相应地其拉伸强度和断裂伸长率分别下降了10.1%和40.1%。 即使PPCH中的HEB摩尔分数仅为0.06%,经过240 h辐照后其数均相对分子质量仅下降了6.2%,相应地其拉伸强度和断裂伸长率也仅分别下降了1.7%和13.3%,证明PPCH具有较强的耐紫外老化性能,原因在于其主链含有HEB单元,对紫外光具有较好的吸收性能。 PPCH的紫外吸收性能随HEB单元在聚合物中含量的增加而增强,因此随着共聚物中引入的HEB单元含量增加,PPCH的相对分子质量和力学性能的保持率均得到了大幅度提高。 另一方面,对PPCH共聚物与相同二羟基二苯甲酮(BP)含量的PPC/BP共混物进行120 h的50 ℃热水萃取实验,PPCH显示出稳定的紫外光吸收性能,而PPC/BP共混物的紫外吸收性能随热水萃取时间的增长而快速下降,表明三元共聚反应能够有效解决普通共混物面临的小分子紫外吸收剂的外迁移问题。  相似文献   

8.
为开发可低温固化的聚酰亚胺树脂, 通过分子结构设计将苯并噁嗪单元引入聚酰亚胺树脂中, 合成了含苯并噁嗪单元及乙炔基封端的双官能化新型聚酰亚胺预聚体(PIBzA). 经高温处理, 苯并噁嗪单元发生开环交联, 同时, 乙炔基端基发生三聚成环反应, 从而在固化树脂中形成双重交联网络结构. 苯并噁嗪单元的引入使聚酰亚胺树脂最快固化反应温度降低约32 ℃, 有效降低了固化温度. 同时, 苯并噁嗪单元的引入未大幅度降低树脂的耐热稳定性, 其玻璃化转变温度(Tg)介于266~290 ℃之间, 5%热失重温度(Td,5%)接近500 ℃, 依然可以满足耐高温复合材料的应用需求. 此外, PIBzA固化树脂具有低介电特性, 其介电常数k介于2.3~3.0, 介电损耗介于0.002~0.008, 可满足透波复合材料及先进微电子封装材料的应用需求.  相似文献   

9.
利用阴离子开环聚合(AROP)及巯基-烯点击反应相结合的路线构筑了一种新型烷基功能化聚醚, 考察了其对聚氯乙烯(PVC)的增塑及抗静电作用. 首先, 以烯丙基缩水甘油醚为单体, 利用AROP制备聚烯丙基缩水甘油醚(PAGE)中间产物; 然后, 以PAGE为前驱体, 借助巯基-烯点击反应将柔性烷基引入其侧链, 获得烷基功能化聚烯丙基缩水甘油醚(PAGEbutane)目标产物. 核磁共振波谱(NMR)及凝胶渗透色谱(GPC)结果表明, 所得聚合物结构与设计一致, 且PAGE的分子量可通过改变单体与引发剂的投料比灵活调控. 热性能研究结果显示柔性烷基的键入导致PAGE的玻璃化转变温度(Tg)进一步降低. PAGEbutaneTg为-74.97 ℃, 且具有较好的热稳定性. PAGEbutane在不损失PVC强度的同时可明显提升其韧性, 同时可有效降低其表面电阻率, 产生一定的抗静电效果. 与邻苯二甲酸二(2-乙基)己酯(DOP)增塑剂相比, PAGEbutane体现出更优异的耐抽出及耐挥发性.  相似文献   

10.
通过4-羟基苯甲醛与2,6-二(4-氯甲基苯基)苯并[1-2,4-5′]二唑之间的Wittig反应,制备了具有蓝色荧光特性的小分子单体2,6-二{4-[2-(4-羟基苯基)乙烯基]苯基}苯并[1-2,4-5′]二唑,在碳酸钾的催化作用下,通过其与4,4′-二氟二苯甲酮的缩聚反应,设计并合成了以均二苯乙烯为共轭母核的可发射蓝光的聚醚醚酮材料(BOE-PEEK),并对其结构进行了表征.测定结果表明,该聚合物的平均分子量(-Mw)为1.38×105,均分散系数(PDI)为4.35,玻璃化温度(Tg)为195℃,热分解温度(Td)为440℃,BOE-PEEK在二甲基乙酰胺(DMA)溶剂中的UV-Vis吸收光谱(λmax)为372 nm,荧光光谱(λmax)为455nm,由导电玻璃/发光层/金属铝电极(ITO/BOE-PEEK/Al)组成的单层器件在电压15 V时,发光亮度达530 cd·cm-2,发光效率为0.36 cd/A.  相似文献   

11.
The glass transition temperature (Tg) for two latices with different styrene/butadiene compositions was determined by the thermal SPM probe resonance frequency method. The results were compared with the Tg values obtained by differential scanning calorimetry (DSC), dynamical mechanical analysis (DMA), process rheometer (PR) and thermo-mechanical analyzer (TMA) measurements. The Tg values detected by the thermal SPM method agreed well with the Tg values obtained by DSC and calculated by the Fox–Flory equation. DMA, on the other hand, showed a significantly higher Tg value for both latices than those obtained from theoretical calculations, the thermal SPM method and DSC. The Tg obtained from the PR curve was slightly higher for the latex with a low styrene content, whereas good agreement was obtained with the thermal SPM data for the latex with a high styrene content. The glass transition temperature determined by TMA agreed fairly well with the thermal SPM data for the latex with the low styrene content, whilst the value of Tg for the second latex was much less than those obtained by the other methods. The thermal SPM method detects changes in thermal behavior (thermal diffusivity, heat capacity) during heating of the latex films rather than changes in the mechanical properties. Information about the sample history could be seen in the thermal SPM curves, which was further associated with the degree of latex film formation, especially when the roughness of the films was taken into consideration.  相似文献   

12.
以硝基乙烷为原料, 经缩合、 氧化及酯化反应, 设计合成了含能增塑剂2,2-偕二硝基丙基三氟丙酸酯(DNPTFP); 利用核磁共振波谱、 红外光谱和元素分析对其结构进行了表征. 优化了DNPTFP的合成工艺, 确定酯化反应的较佳反应条件: 以甲苯为反应溶剂, n(2,2-偕二硝基丙醇)∶n(三氟丙酸)=1∶1.10, 催化剂浓硫酸的质量分数为5.0%, 反应温度110 ℃, 反应时间10 h. 在此条件下, DNPTFP的收率和纯度分别为75.2%和99.0%. 热分析测试结果表明, DNPTFP的玻璃化转变温度为-80.5 ℃, 热分解温度为267.59 ℃; 机械感度测试结果表明, DNPTFP的撞击感度为H50=125.9 cm, 摩擦感度为0, 说明DNPTFP具有良好的低温性能、 热稳定性及较低的机械感度. 此外, 相溶性试验、 黏度及玻璃化转变温度测试结果表明, DNPTFP与聚叠氮缩水甘油醚(GAP)相溶性良好, DNPTFP可显著调控GAP的黏度和玻璃化转变温度, 并且随其含量增加黏流活化能逐步降低, 增塑效率逐步升高. 因此, DNPTFP对GAP展现出优良的增塑效果, 在GAP基火炸药配方中有良好的应用前景.  相似文献   

13.
Naphthenic and paraffinic oils were analyzed by modulated differential scanning calorimetry (MDSC). The results showed several improvements in the analysis of thermal properties when compared with standard DSC. The glass transition temperature (Tg), the enthalpy relaxation at Tg, and the melting endotherms could be deconvoluted, and reversible melting could be identified. This allowed for an easier interpretation of the thermal properties of the oils. With MDSC, the Tgs in mineral oils were found to coincide with endothermic enthalpy relaxation, which is generally regarded as a melting endotherm with standard DSC. A decrease in heat capacity after Tg was attributed to the existence of rigid amorphous material. From Δcp at Tg and the oil molecular weight, the number of repeat units in the oil chains was estimated at less than 20. The Tg of a hypothetical pure aromatic oil was found to be similar to that for petroleum asphaltenes, and that for a naphthenic oil of infinite molecular weight to be similar to that of petroleum resins.  相似文献   

14.
基团贡献加和法(GAP)假设聚合物性质来自于重复单元中各次级基团的贡献, 因此可以通过计算基团贡献值的加和值预测聚合物性质. van Krevelen建立了基团贡献加和法, 计算了数十种聚合物的性质, 包括常用的溶解度参数、 熔点和玻璃化转变温度(Tg)等参数. 聚酰亚胺是由二酐和二胺缩合反应得到的一类高性能聚合物, 其中Tg是决定聚酰亚胺使用温度范围的关键性质. 因此准确预测聚酰亚胺的Tg有助于优化和筛选单体分子结构. 本文首先利用van Krevelen提供的普适性基团贡献值计算了74种聚酰亚胺的Tg, 发现计算值与实验值具有较好的相关性(R2=0.88, s=21 K), 但存在系统误差, 如二者线性拟合斜率为0.78, 远偏离1. 由于普适性贡献值来自于不同聚合物的数据迭代, 对聚酰亚胺体系适用性较差, 必须对基团贡献值进行校正. 本文系统性地提高了刚性基团的贡献值, 同时降低了柔性基团的贡献值. 利用校正后的基团贡献值重新计算了Tg, 其与实验值具有更好的相关性(R2=0.88, s=18 K)和一致性(线性拟合斜率为0.94). 进一步使用上述校正后的已知基团贡献值对未知的7种二酐基团和6种二酐或二胺中的子基团进行赋值. 训练组(82个聚酰亚胺)和测试组(35个聚酰亚胺)数据验证了这13个基团贡献值的可靠性. 本文建立的基团贡献值校正方法和对未知基团的赋值法也可以推广应用于其它芳杂环类聚合物.  相似文献   

15.
A novel dendritic molecular glass(MG) containing adamantane core(AD-15) was synthesized and characterized. It exhibits good solubility in common organic solvents and a stable amorphous state at room temperature, which contributes to forming films with different thicknesses by spin-coating. The thermal analysis of AD-15 indicates that no apparent glass transition temperature(Tg) is observed before the thermal decomposition temperature(Td=160 ℃). The good thermal resistance suggests that it can satisfy the lithographic process and is a candidate for photoresist materials. The patterning properties of AD-15 resist were evaluated by electron beam lithography(EBL). By optimizing the lithographic process parameters, AD-15 resist can achieve 40 nm half-pitch patterns with a line-edge roughness of 4.0 nm. The contrast and sensitivity of AD-15 resist were 1.9 and 67 μC/cm2, respectively. Compared with the commercial PMMA(950k) electron beam resist, the sensitivity of AD-15 resist increases by 6 times. This study provides a new example of molecular glass resist with high resolution and sensitivity for EBL.  相似文献   

16.
Poly(butylene carbonateXPBC) has significantly promising applications as a degradable material in the field of polymers, while its poor thermal performance and low crystallization rate are its main defects. To overcome these shortcomings, a series of poly(butylene carbonate-co-spirocyclic carbonateXPBSC) copolymers were synthesized from diphenyl carbonate, 1,4-butanediol and spiroglycol via two-step polycondensation reactions, using magnesium oxide as a catalyst. Differential scanning calorimetry(DSC) results indicated that the glass transition temperature(Tg) values of PBSC copolymers were enhanced from -19℃ to 56℃ with rising the spiroacetal moiety content. Thermogravimetric analysis(TGA) results showed that the resulting PBSCs have a higher thermal stability than that of poly(butylene carbonate). Wide angle X-ray diflraction(WXRD) patterns were characterized to investigate the crystallization behaviour of PBSCs. Tensile testing demonstrated that copolymerization of spiroacetal moieties into PBC chains imparted PBSC with favourable mechanical performance. Typically, PBSC 30 had a tensile modulus of (1735±430) MPa, a tensile strength of (42±5) MPa and an elongation of 504%±36%.  相似文献   

17.
A new series of glass-forming molecular materials have been synthesized that incorporate 1-phenyl-2-(6-cyanonaphth-2-yl)ethyne as the high optical birefringence nematogenic moiety and a diphenylacetylenic group as part of the chiral moiety containing (S)-(-)-1-phenylethanol. To facilitate the preparation of chiral nematic systems, the key intermediate, i.e. 1,3,5-cyclohex-anetricarboxylic anhydride chloride, was synthesized and characterized. The thermotropic and optical properties of all products and the blends prepared therefrom were characterized by polarizing optical microscopy, differential scanning calorimetry, and UV-VIS-NIR spectrophotometry. It was found that all the resultant molecular materials readily form glasses with a Tg of around 60°C while showing no residual crystallinity below Tg or tendency toward crystallization by heating above Tg. Furthermore, binary blends showed a decreasing degree of miscibility at an increasing extent of structural dissimilarity with the all-chiral/all-nematic systems exhibiting significant phase separation at a chiral mole fraction of 0.16.  相似文献   

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