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1.
研究了2种烯烃嵌段共聚物(OBC1和OBC2)与等规聚丙烯(iPP)的相容性,其中2种烯烃嵌段共聚物具有相近的软硬段组成,软硬段中辛烯含量接近,但分子量不同.通过对OBC线性黏弹性的研究发现高分子量的OBC1会发生较强的介观相分离,而在所研究的温度范围内,低分子量的OBC2保持均相.利用了液滴回缩和流变学的方法测量了2种iPP/OBC共混体系的界面张力,同时采用动态力学分析研究了共混物中组分玻璃化转变温度的变化,并通过自浓度模型估算了2种OBC与iPP互溶的溶解度.结果发现虽然OBC1与iPP的界面张力较高,但二者之间的相容性却优于OBC2与iPP的相容性,这很可能是OBC1分子量大,嵌段共聚物的强介观相分离所导致其与iPP相容性更好.对iPP/OBC共混体系结晶行为的研究也证实了相容性差异对共混物中等规聚丙烯结晶行为的影响.  相似文献   

2.
合成了系列聚右旋乳酸(PDLA)嵌段重量分率(fw=0~0.61)的窄分子量分布聚苯乙烯-b-聚右旋乳酸二嵌段共聚物(PS-b-PDLA).运用温度调制示差扫描热分析仪(TMDSC)和热台偏振光显微镜(POM)等研究手段,对制备所得的结晶性二嵌段共聚物的热性能、结晶速率与结晶形貌等进行了研究.研究结果表明,与聚右旋乳酸均聚物相比,随着PS-b-PDLA中结晶性PDLA嵌段重量分率fw减少,无定形聚苯乙烯嵌段(PS)对PDLA嵌段链段的结晶抑制作用增强,PS-b-PDLA的热结晶性能与结晶形貌发生显著变化;相对于PDLA均聚物,PS-b-PDLA的冷结晶温度(Tcc)和结晶平衡熔点(Tm0)分别下降14℃和38℃,球晶生长速率明显降低.在无定形PS嵌段链段的玻璃化温度(Tg)附近,二嵌段PS-b-PDLA的结晶行为出现拐点,揭示PS嵌段由于相分离所形成纳米微相空间对PS-b-PDLA中PDLA链段的结晶产生影响,并且该影响作用程度与PDLA嵌段的重量分率fw和结晶温度(Tc)相关。  相似文献   

3.
动态密度泛函理论在嵌段共聚物介观结构模拟中的应用   总被引:3,自引:0,他引:3  
采用动态密度泛函理论(DDFT)方法对两嵌段和三嵌段共聚物熔体微相分离后的三维介观结构进行了模拟研究,考察了共聚物链长.N—12下组分A、B不同配比的11种两嵌段共聚物和10种三嵌段共聚物,通过等密度面图很好地表述了微相分离后的三维介观结构。通过比较序参数户、自由能F和熵S随时间的变化,发现当组分A与组分B的链节数之比.NA/NB和模拟参数均相同时,两嵌段共聚物熔体比三嵌段共聚物熔体容易发生微相分离,而三嵌段共聚物越不对称,微相分离越容易。  相似文献   

4.
本文使用虹外光谱及膨胀计等方法,对聚四亚甲基醚二醇类多嵌段共聚物的软链段结晶性进行了研究。在聚醚-聚酯多嵌段共聚物中(PTMEG>60%),其软链段结晶的熔点和结晶速率均随PTMEG含量减少而下降。而在聚醚-聚脲胺酯多嵌段共聚物中,由于N—H和C—O—C之间氢键的作用,即使在低温下,其软链段也难于结晶。此外,高倍拉伸会提高上述二类多嵌段共聚物中软链段结晶的熔点和结晶速率。  相似文献   

5.
嵌段共聚物可发生微相分离形成丰富的介观尺度上的相结构,而共轭聚合物是一类具有特殊的力学、导电性能或光电功能的半刚性链高分子.全共轭嵌段共聚物因其兼具两者的特性而备受瞩目.本文着重介绍了近年来课题组在基于全共轭聚(3-烷基噻吩)和聚(3-烷基硒吩)嵌段共聚物体系的研究进展,通过改变体系的分子结构包括主侧链结构、侧链的烷基长度及取代基团等以及对体系在溶液状态及薄膜状态进行后处理包括改变溶剂、热处理、溶剂蒸气处理等来调控体系的微相分离行为和结晶行为,实现对材料凝聚态结构的调控.在此基础上,以有机场效应晶体管和聚合物太阳能电池器件作为最终体现聚噻吩或聚硒吩类体系凝聚态结构与性能关系的平台,将获得的调控体系凝聚态结构的有效策略用于实现其半导体材料物理性能的提升.  相似文献   

6.
嵌段共聚物在选择性溶剂中能够自组装形成胶束,胶束的不同形状与嵌段共聚物的结构、溶剂和浓度有关.无定形嵌段共聚物通常形成球形胶束,在某些情况下也可以形成其它形状的胶束,关于结晶性嵌段共聚物在无定形链段选择性溶剂中的胶束结构和形状的报道非常少.由于结晶和相似相溶两种作用力的竞争,使得这类胶束的形状丰富多变.通常结晶作用较强时,结晶性嵌段共聚物形成片状的胶束,当结晶组分比较少时,可形成棒状胶束,尽管理论上已经指出存在球形胶束,但尚无关于这方面的报道。  相似文献   

7.
采用Monte Carlo模拟方法研究了具有相同链长和组分比的不同嵌段序列的AB两嵌段共聚物与ABA三嵌段共聚物在选择性溶剂中形成囊泡的动力学过程. 模拟结果表明, AB两嵌段共聚物囊泡的形成与ABA三嵌段共聚物囊泡的形成的动力学过程不同. 在慢速退火条件下, ABA三嵌段共聚物囊泡是通过亲水链段向胶束的表面和中心扩散而形成的, 而AB两嵌段共聚物囊泡则由片层弯曲闭合而形成. 相对而言, 退火速度对AB两嵌段共聚物囊泡形成的动力学过程没有显著影响, 其改变仅影响亲水链段与疏水链段发生相分离的难易程度. 当退火速度较快时, 亲水链段和疏水链段发生相分离的速度较快且相分离发生在囊泡形成之前; 而当退火速度较慢时亲水链段和疏水链段之间的相分离在囊泡形成之后仍在进行.  相似文献   

8.
杨洁心  刘雷  徐君庭 《化学进展》2014,26(11):1811-1820
近年来嵌段共聚物在选择性溶剂中由结晶驱动形成胶束的自组装过程因其较好的可控性逐渐受到人们的关注.本文首先综述了嵌段共聚物结晶性胶束形貌和尺寸的影响因素,包括溶剂环境、共聚物结构、结晶温度等.然后介绍了结晶性胶束的活性生长以及"嵌段共胶束";最后提出了该研究领域目前存在的问题和今后可能的发展方向.  相似文献   

9.
对pluronic水溶液介观相分离的理论模拟研究   总被引:1,自引:0,他引:1  
用一种新的动力学密度泛函方法(介观动力学)对pluronics(P85)水溶液的介观相分离动力学进行了模拟研究。该方法可以直接给出水溶液体系中不规则三维微观形貌的动力学形成过程。在动力学模拟中热力学参数通过平均场密度泛函方法计算得到,共聚物分子则用高斯链作为模型进行模拟研究。高斯链的最小结构单元是被抽象为键连的株子体,代表实际体系高聚物分子中的一个单体或几个单体。研究了pluronuc水溶液体系的动力学演变历程并讨论了嵌段共聚物中不同组分长短以及共聚物浓度等因素对溶液微观形貌和体系性质的影响。和其它平衡态模拟方法相比较,介观动力学方法可以给出介观相分离的时间演变过程,有助于加深对很多工业加工处理过程和生理过程机理的理解。  相似文献   

10.
梳型嵌段共聚物微观相分离的耗散粒子动力学模拟   总被引:3,自引:2,他引:1  
利用耗散粒子动力学(Dissipative particle dynamics, DPD)模拟方法研究了二维梳型嵌段共聚物的微观相分离, 得到了相形貌与侧链长度及链段间相互作用的依赖关系, 进一步与线型和星型嵌段共聚物微观相分离进行了对比. 模拟结果揭示了本体中影响梳形嵌段共聚物微观相分离的主要因素, 包括嵌段共聚物的组成\, 拓扑结构以及不同粒子间的排斥力.  相似文献   

11.
本文利用DSC、IR、WAXD、PLM和SALS等实验手段,探讨了具有相同软段的聚酯型脂肪族和芳香族聚氨酯硬段结晶特性的差异,发现脂肪族聚氨酯的相分离速率极快,氢键主要在硬段间形成,因而对硬段的结晶过程影响不大;而芳香族聚氨酯的相分离速率较慢,软硬段间又能形成氢键,因而对硬段的结晶起了阻碍作用。  相似文献   

12.
脂肪族水性聚氨酯的动态力学行为研究   总被引:4,自引:1,他引:4  
合成了一系列脂肪族水性聚氨酯 .考察了软段的组成、软段分子量及DMPA用量对产物动态力学性能的影响作用 .实验结果表明 ,软段的化学结构对水性聚氨酯的相态结构影响很大 .聚醚型水性聚氨酯具有较低的软段玻璃化转变温度 (Tgs) .聚醚型产物的微相分离程度高于聚酯型产物 .当采用聚酯和聚醚二元醇为混合软段时 ,Tgs随软段中聚醚含量的提高而逐渐降低 .提高DMPA用量 ,软段玻璃化转变温度Tgs移向低温区 ,硬段玻璃化转变温度Tgh移向高温区 ,说明体系的微相分离程度加大 .当软段分子量较低时 ,产物为半相容结构 ,只有一个主转变峰 ,软段的玻璃化转变以肩峰的形式出现 ;当软段分子量较高时 ,产物的微相分离程度较高 ,可以分别观察到软段及硬段的玻璃化转变 .总之 ,通过改变软段的种类、组成和分子量以及DMPA用量 ,可以大幅度地改变水性聚氨酯的形态结构 .  相似文献   

13.
聚乙二醇型聚氨酯软硬段对其相变储热性能的影响   总被引:2,自引:0,他引:2  
以不同分子量的聚乙二醇(PEG)为软段,MDI-BDO为硬段,采用两步法溶液聚合合成一种具有固-固相变储热性能的聚氨酯材料.通过DSC,WAXD等测试手段对体系的软硬段结晶性,微相分离,相变可逆性及循环热稳定性进行研究,结果表明,聚氨酯中硬段的存在对软段结晶有着很大的影响,当软段分子量达到2000或以上时,软段才具有较大的结晶度和熔融相变焓,且硬段含量必须高于一定值才能形成较为完善的物理交联网络以保证材料在发生相变时维持固体状态.同时符合这两个条件的试样能具有较好的固-固相变储热性能.就软段PEG含量及分子量对材料储热性能的影响进行了研究,通过调节软段含量与分子量得到一系列具有不同相变焓和相变温度的聚氨酯固-固相变储热材料.经测试还发现,该材料具备很好的相变可逆性和循环热稳定性,是一类很有开发前景的相变储热材料.  相似文献   

14.
A series of polyurethane block copolymers based on hydroxybutyl terminated poly(chloropropylmethyl-dimethylsiloxane) and poly(tetramethylene oxide) soft segments of molecular weights 2100 and 2000, respectively, were synthesized. The hard segments consisted of 4,4′-methylenediphenylene diisocyanate (MDI) that was chain extended with either 1,4-butanediol (BD) or N-methyldiethanolamine (MDEA). The materials chain extended with MDEA were ionized using 1,3-propane sultone. The weight fraction of the hard segments was in the range 0.30–0.45. The effect of mixed soft segments, chain extenders, and zwitterionization on the extent of phase separation and physical properties was studied by utilizing differential scanning calorimetry and dynamic mechanical, stress-strain, and Fourier Transform Infrared spectroscopy experiments. All of these short segment block copolymers showed nearly complete phase separation. The zwitterionomer materials exhibited ionic aggregation within the hard domains. Although hard segment crystallinity or ionic aggregation did not affect the morphology, hard domain cohesion was important in determining the tensile and viscoelastic properties of these elastomers.  相似文献   

15.
New challenges and opportunities for polyolefin blends arise from the recent introduction of olefin block copolymers (OBCs). In this study, the effect of chain blockiness on the miscibility and phase behavior of ethylene‐octene (EO) copolymer blends was studied. Binary blends of two statistical copolymers (EO/EO blends) that differed in comonomer content were compared with blends of an EO with a blocky EO copolymer (EO/OBC blends). The blends were rapidly quenched to retain the phase morphology in the melt and the phase volumes were obtained by atomic force microscopy (AFM). Two EOs of molecular weight about 100 kg/mol were miscible if the difference in octene content was less than about 10 mol % and immiscible if the octene content difference was greater than about 13 mol %. The blocky nature of the OBCs reduced the miscibility and broadened the partial miscibility window of the EO/OBC blends compared with the EO/EO blends. The EO/OBC blends were miscible if the octene content difference was less than 7 mol % and immiscible above 13 mol % octene content difference. It was also found that the phase behavior of EO/OBC blends strongly depended on blend composition even for constituent polymers of about the same molecular weight. Significantly more demixing was observed in an OBC‐rich blend (EO/OBC 30/70 v/v) than in an OBC‐poor blend (EO/OBC 70/30 v/v). An interpretation based on extractable fractions of the OBC described the major features of the EO/OBC (30/70 v/v) blends. © 2009 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 47: 1554–1572, 2009  相似文献   

16.
聚硅氧烷聚脲多嵌段共聚物中氢键的研究   总被引:4,自引:0,他引:4  
采用多种手段研究了聚硅氧烷与聚脲嵌段共聚物中所存在的各类氢键.特别探讨在聚硅氧烷软段中引入极性氰丙基对体系成氢键能力的影响和两相间相互作用力的情况结果表明,在软段分子中引入极性氰丙基有利于增加聚硅氧烷分子与聚脲链段的相互作用,这一相间作用力使两相间界面层厚度随着硬段分子量的增加而加宽,并发现在聚硅氧烷聚脲嵌段共聚物中硬段的聚集形态随溶液浓度改变变化不大,其中氢键随着温度升高而下降.  相似文献   

17.
Process-structure-property relationships in the formation of an elastic fiber from a melt of segmented polyester-polyether copolymers are described. The “soft” segment, polyethylene oxide, is modified to prevent its crystallization at use temperatures. Features of the polymer related to phase separation of the soft segments and the crystallizable “hard” segments are discussed. An “ideal” morphology of such a thermoplastic elastomeric fiber that would maximize its recoverable extension is defined, and a path toward its realization in a melt spinning process is described.  相似文献   

18.
Morphology and tensile properties of model thermoplastic polyurethanes (TPUs) containing polyisobutylene (PIB) or poly(tetramethylene oxide) (PTMO) based soft segment and 4,4‐methylene bis(phenyl isocyanate) (MDI) and 1,4‐butanediol (BDO) based monodisperse hard segments (HSs), consisting of exactly two to four MDI units extended by BDO, were investigated. Using FT‐IR spectroscopy, increased hydrogen bonded C?O fraction was observed in model TPUs as the HS size increased. The hydrogen bonded C?O fraction was higher in PIB based TPUs compared with PTMO based TPUs, indicating higher phase separation in PIB based TPUs. The morphology of TPUs was investigated using AFM phase imaging, which showed ribbon‐like or interconnected hard domains in PTMO based model TPUs and randomly dispersed hard domains in PIB based model TPUs. SAXS revealed that the degree of phase separation in the model TPUs was higher than in their polydisperse analogues. Domain spacing as well as interfacial thickness increased with the increasing HS size, and both values were higher in PTMO based TPUs. The tensile analysis indicated that model TPUs exhibited higher modulus and slightly higher elongation compared with their polydisperse analogues. Only in PTMO based model TPUs, strain induced crystallization was observed above 300% elongation. © 2016 Wiley Periodicals, Inc. J. Polym. Sci., Part B: Polym. Phys. 2016 , 54, 2485–2493  相似文献   

19.
The hydrogen bonding and crystallization of a biodegradable poly(ester urethane) copolymer based on poly(L ‐lactide) (PLLA) as the soft segment were investigated by FTIR. On slow cooling from melt, the onset and the progress of the crystallization of the urethane hard segments were correlated to the position, width, and relative intensity of the hydrogen‐bonded N? H stretching band. The interconversion between the “free” and hydrogen‐bonded N? H and C?O groups in the urethane units in the process was also revealed by 2D correlation analysis of the FTIR data. The crystallization of the PLLA soft segments was monitored by the ester C?O stretching and the skeletal vibrations. It was revealed that the PLLA crystallization was restricted by the phase separation and the urethane crystallization, and at cooling rates of 10 °C/min or higher, the crystallization of the PLLA soft segments was prohibited. © 2009 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 47: 685–695, 2009  相似文献   

20.
A series of polyurea urethane block polymers based on either aminopropyl-terminated polycyanoethylmethylsiloxane (PCEMS) soft segments or soft segment blends of PCEMS and polytetramethylene oxide (PTMO) were synthesized. The hard segments consisted of 4,4′-methylenediphenylene diisocyanate (MDI) chain-extended with 1,4-butanediol. The hard segment content varied from 11 to 36%, whereas the PTMO weight fraction in the soft segment blends varied from 0.1 to 0.9. The cyanoethyl side group concentration was also varied during the synthesis of the PCEMS oligomer. The morphology and properties of these polymers were studied by differential scanning calorimetry, infrared spectroscopy, dynamic mechanical and tensile testing, and small-angle x-ray scattering. These materials exhibited microphase separation of the hard and soft segments; however, attaching polar cyanoethyl side groups along the apolar siloxane chains promoted phase mixing in comparison with polydimethylsiloxane-based polyurethanes. The increased phase mixing is postulated to lead to improved interfacial adhesion and thus can account for the observed improvement in ultimate tensile properties compared with polydimethylsiloxane-based polyurethanes. Both hard segment content and cyanoethyl concentration are important factors governing the morphological and tensile properties of these polymers.  相似文献   

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