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71.
用扫描电镜(SEM)和原子力显微镜(AFM)研究了两种不同共混比的聚(苯乙烯-嵌-乙烯/丁烯-嵌-苯乙烯)(SEBS)和聚甲基丙烯酸甲酯(PMMA)共混膜的表面形态和相分离行为。结果表明,当膜厚为25μm时,两种共混膜表面均未见明显的相分离形貌,而在膜体相中可见宏观相分离结构。当膜厚为120 nm时,质量比为30/70的共混膜表面可见明显的“海-岛”状宏观相分离;而质量比为60/40的共混膜表面未见明显宏观相分离,仅有少量PMMA小颗粒嵌于SEBS基体中,形成SEBS趋于包裹PMMA微区的稳定“笼型”结构,其尺度属于介观相分离。退火后,两样品膜的体相形态与表面形貌趋于一致,均呈现宏观的相分离结构。  相似文献   
72.
聚偏氟乙烯取向薄膜的结晶形态   总被引:2,自引:0,他引:2  
本文用小角激光散射法研究了聚偏氟乙烯薄膜在拉伸取向过程中晶体形态及结构的变化。拉伸使球晶形变为椭球,同时伴随着局部熔融与重结晶过程,散射图案由原来的四叶瓣发展为八叶瓣。红外测量及X-射线衍射分析表明,拉伸引起分子链构象改变,使晶型发生了转变。  相似文献   
73.
The electrical properties of polycrystalline lithium chloroboracite, Li4B7O12Cl, prepared by the sol-gel method were investigated in connection with their structure. Li4B7O12Cl pellets were prepared with different amounts of hydrochloric acid or ammonium chloride. The kind and amount of the chlorine source affected the formation of by-products (Li2B4O7, LiCl, a glass phase) and the morphology of the Li4B7O12Cl pellets. Thus their conductivity, which is dominated by grain boundary response owing to the high porosity of the materials, was also affected. The formation of Li2B4O7 as a by-product led to a higher activation energy and lower conductivity. In those pellets in which Li2B4O7 did form, an increase of the amount of glass phase led to higher conductivities.  相似文献   
74.
树枝状十二酯的合成   总被引:1,自引:0,他引:1  
以乙二胺和丙烯酸十二酯为原料,甲醇为溶剂,采用迈克尔加成反应合成了低代的树枝状十二酯。探讨了反应条件对树枝状十二酯收率的影响。乙二胺2mL(30mmol),n(乙二胺):n(丙烯酸十二酯)=1:6,甲醇占反应液总体积的50%,反应温度40℃,反应时间48h,产率54.9%。  相似文献   
75.
为了研究形态(特别是分散状态)对聚合物共混物韧性的影响,建立了准网络形态模型,定义了分散相分布系数(ξ,0<ξ1),并给出其物理意义,推导了基体层厚度的计算公式,研究了形态参数的变化对基体层厚度的影响.对于常见的无规形态,ξ≈1.对于准网络形态,ξ<1,并且不是常数.计算结果表明,减小ξ和分散相粒径及其分布、增大其体积分数有利于减小基体层厚度.从理论上证明了准网络形态比无规形态更有利于减小基体层厚度.  相似文献   
76.
 Cationic hydrophilic copolymer latexes were synthesized at 70 °C either by batch or two-step emulsifier-free emulsion poly-merization of styrene (St), N-iso-propylacrylamide (NIPAM), and aminoethylmethacrylate hydro-chloride (AEM) using 2,2′-azobis (2-amidinopropane) dihydrochloride as initiator. At first, batch polymerization kinetics were followed by gas chromatography (GC), revealing that NIPAM rapidly homopolymerized, before the polymerization of styrene had started. Particle size analysis by quasi-elastic light scattering (QELS) and transmission electron microscopy (TEM) showed that monodispersed particles were obtained with the formation of a poly[NIPAM] rich shell. Adding a small amount of the cationic monomer caused a strong decrease of the particle size without affecting the size monodispersity. When a shot process was used, a narrow particle size distribution was maintained, provided that the monomer addition was performed at a relatively high conversion of the first batch step. The poly[NIPAM] rich shell layer was larger with the shot process, but increasing the amino-containing monomer in the recipe resulted in a dramatic decrease of the thickness. Combination of transmission, scanning and atomic force microscopy techniques showed that these hydrophilic particles exhibited odd-shaped structures, the unevenness being dependent upon the performed process. Kinetic data and particle morphology information were inferred for discussion of the polymerization mechanism of this system. Received: 21 August 1997 Accepted: 22 October 1997  相似文献   
77.
加氢脱氮催化剂中硫化钼结构的表征   总被引:1,自引:0,他引:1  
众所周知,重油加氢脱氮(HDN)所用Mo-Ni/Al2O3催化剂需经预硫化后始有显著的活性,关于硫化的条件工业上已较成熟,但在持续反应过程中硫化催化剂的结构与活性间的关系则很复杂,如硫化钼的价态和结构、金属组分和担体间的相互作用、反应条件及原料对催化剂组分的影响,以及硫化态催化剂中MoS2结晶的形貌等都可以引起催化剂活性本质的变化.  相似文献   
78.
2,2''''-联吡啶和亚铁氰化钾对乙醛酸化学镀铜的影响   总被引:1,自引:0,他引:1  
以乙醛酸作还原剂、Na2EDTA为络合剂、2,2'-联吡啶和亚铁氰化钾作为添加剂组成化学镀铜体系,研究了两种添加剂对化学镀铜速率、镀层表面形貌、组成和结构的影响.结果表明:添加适量的2,2'-联吡啶和亚铁氰化钾,不仅提高了镀液的稳定性,而且使沉积速率增加1倍.这两种添加剂的同时使用,使镀层颜色变亮,形貌发生变化.所得镀层是多晶铜,没有发现夹杂Cu20.  相似文献   
79.
 Noble metal nanoparticles were prepared by the in situ reduction of the respective metal salt precursors in the presence of various protective polymers. Transmission electron microscopy (TEM) has been used to determine the particle shapes and morphologies. These are strongly influenced by the reduction methods and conditions chosen, but the choice of the protective polymer is equally important for controlling the particle morphologies and for the stabilization of the colloids. A whole spectrum of nanoparticle morphologies and shapes was obtained, ranging from nanoagglomerates which are nevertheless well-defined and well-stabilized to nanosized single crystals with triangular shape. Received: 2 February 1998 Accepted: 29 May 1998  相似文献   
80.
In seeded emulsion polymerization, during the second stage, new interfaces appear and the surface area changes. A thermodynamic equilibrium approach is presented which predicts particle morphology of a whole range of non-spherical particles upon polymer conversion. Simulation takes into account swelling ratio, molar volumes and interfacial tension. As the particle geometry is complex, a new mathematical procedure is detailed.The computed data are useful to discuss either the stability or the instability of the particles morphology. These results must be compared with actual experimental structures.Abreviations and symbols G Gibbs' free energy - reduced Gibbs' free energy - i interfacial tension - 12 interfacial tension between polymer 1 and polymer 2 - 1w interfacial tension between polymer 1 and water - 2w interfacial tension between polymer 2 and water - r 1 polymer 1 swollen by monomer 2 sphere radius - r 2 polymer 2 swollen by monomer 2 sphere radius - r i interfacial radius - h 1 sphere 1 distance to minimal section - h 2 sphere 2 distance to minimal section - h i interfacial sphere distance to minimal section - sign ofh i, positive when the interface sphere is on the side of the sphere 2, negative when the interface sphere is on the side of the sphere 1 - A 12 surface between polymer 1 and polymer 2 - A 1w surface between polymer 1 and water - A 1w 0 surface between polymer 1 and water before polymerization - A 2w surface between polymer 2 and water - v 1 volume of the polymer 1 swollen by monomer 2 - v i volume of the polymer 1 swollen by monomer 2 before polymerization - v 2 volume of the polymer 2 swollen by monomer 2 - V p1 polymer 1 molar volume - V p2 polymer 2 molar volume - V m2 monomer 2 molar volume - n p2 polymer 2 number of mole - n p1 polymer 1 number of moles - n m21 monomer 2 number of mole in the swollen polymer 1 - n m22 monomer 2 number of mole in the swollen polymer 2 - n m2 monomer 2 total number of mole - n m2 monomer 2 number of mole before polymerization - TGn 1 polymer 1 swelling rate - TGn 2 polymer 2 swelling rate - TGn i maximum number of mole of monomer 2 in polymeri by mole of polymeri - x polymer 2 conversion rate - K, p, q mathematical variables - D, r, a mathematical variables  相似文献   
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