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首页> 外文期刊>Journal of Macromolecular Science. Physics >Regenerated cellulose films from NaOH/urea aqueous solution by coagulating with sulfuric acid
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Regenerated cellulose films from NaOH/urea aqueous solution by coagulating with sulfuric acid

机译:通过用硫酸凝结从NaOH /尿素水溶液中再生纤维素膜

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摘要

A series of novel regenerated cellulose (RC) films was prepared from cotton linters in 6wt% NaOH/4wt% urea aqueous solution by coagulating with 1-20 wt% sulfuric acid (H2O4) aqueous for 1-20 min. Dependences of structure, morphology, light transmittance, mechanical properties, and water permeability of the films on the H2SO4 concentration and the coagulation time were investigated by using IR, UV-Vis, x-ray diffraction, scanning electron micrograph, tensile testing, membrane osmometry, etc. All of the films exhibited homogeneous porous structure on the surface, but different inner architectures for the various coagulation conditions. The tensile strength and breaking elongation of the films decreased with increasing H2SO4 concentration and the coagulation time, and the highest tensile strength (97 MPa) of the films was obtained by coagulating with 5 wt% H2SO4 for 2 min. The H2SO4 concentrations have significantly more influence on the structure and properties of the films than the coagulation time. The novel RC films displayed larger pore size and higher water permeability than those of RC films prepared from cellulose cuoxam, and the pore sizes could be adjusted by changing the H2SO4 concentration. This work provided an optimal coagulation condition for preparing RC films in the solvent system and scientific information for controlling the properties and pore sizes of the films. [References: 24]
机译:由棉短绒在6wt%NaOH / 4wt%尿素水溶液中制备一系列新颖的再生纤维素(RC)膜,方法是与1-20 wt%的硫酸(H2O4)水溶液凝结1-20分钟。通过红外,紫外-可见,X射线衍射,扫描电子显微镜,拉伸试验,膜渗透压法研究了膜的结构,形态,透光率,机械性能和透水性对H2SO4浓度和凝固时间的影响。所有的膜在表面上均表现出均匀的多孔结构,但是对于各种混凝条件而言,其内部结构不同。薄膜的拉伸强度和断裂伸长率随着H2SO4浓度和凝结时间的增加而降低,并且通过用5 wt%H2SO4凝结2分钟获得最高的薄膜拉伸强度(97 MPa)。 H 2 SO 4浓度对膜的结构和性能的影响远大于凝结时间。新型RC膜的孔径和吸水率要比用纤维素cuoxam制备的RC膜大,并且可以通过改变H2SO4浓度来调节孔径。这项工作为在溶剂体系中制备RC膜提供了最佳的凝结条件,并为控制膜的性质和孔径提供了科学信息。 [参考:24]

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