首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 171 毫秒
1.
采用化学 物理交联法制备了聚乙烯醇/壳聚糖/纳米羟基磷灰石(PVA/CS/n-HA)复合水凝胶材料。 通过对比其含水率、拉伸强度、红外光谱和TG谱图,探讨了PVA含量及戊二醛加入量对材料性能的影响。 结果表明,m(PVA)∶m(CS+n-HA)=5∶1,戊二醛质量分数为2%时,复合水凝胶材料具有较好的综合性能:含水率为82.0%、拉伸强度为2.14 MPa、断裂伸长率为343.26%;同步热分析表明,25~140 ℃,仅存在水分的蒸发,直至360 ℃材料才发生分解,说明材料的热稳定性良好;红外分析表明,CS与戊二醛发生了交联反应。  相似文献   

2.
采用化学-物理交联法制备了聚乙烯醇/壳聚糖/纳米羟基磷灰石(PVA/CS/n-HA)复合水凝胶材料。通过对比其含水率、拉伸强度、红外光谱和TG谱图,探讨了PVA含量及戊二醛加入量对材料性能的影响。结果表明,m(PVA)∶m(CS+n-HA)=5∶1,戊二醛质量分数为2%时,复合水凝胶材料具有较好的综合性能:含水率为82.0%、拉伸强度为2.14 MPa、断裂伸长率为343.26%;同步热分析表明,25~140℃,仅存在水分的蒸发,直至360℃材料才发生分解,说明材料的热稳定性良好;红外分析表明,CS与戊二醛发生了交联反应。  相似文献   

3.
郭燕川  孙瑞雪  马铭  陈丽娟  宋宇  邓旭明 《应用化学》2009,26(12):1391-1394
采用乳液、离子缔合法制备得到明胶(Gel)/β-纳米磷酸三钙(β-TCP)复合多孔微球,其尺寸可通过控制反应的搅拌速度进行调节。 SEM和光学显微镜观察表明,明胶/β-TCP复合微球尺寸在20~40 μm之间,被包敷的磷酸三钙为200 nm左右,微球内部呈多孔结构。 当m(磷酸三钙)∶m(明胶)>0.4∶1时,有大量花瓣状晶体附着于复合微球的表面,是磷酸三钙溶解和明胶分子诱导重结晶所致。 XRD与IR图谱表明,磷酸三钙纳米粒子与明胶之间存在化学键合,明胶/β-纳米磷酸三钙复合微球的微观结构与自然骨相似。 DSC-TGA结果显示,90%的TCP在乳化过程中与明胶复合。 本文所制备的复合微球,为添加各种药物和促骨生长因子并实现缓释提供了优良的载体。  相似文献   

4.
从仿生学角度出发,将自制的人工角膜支架材料羟基磷灰石/聚乙烯醇/壳聚糖(n-HA/PVA/CS)浸泡在模拟体液中,对材料的含水率及力学性能进行了测试,并利用扫描电镜、X射线衍射仪、电感耦合等离子体原子发射光谱仪及热重分析仪研究了材料在模拟体液中的形貌、晶体结构、元素组成及热稳定性.结果表明,在模拟体液中,n-HA/PVA/CS复合水凝胶的含水率为80%~86%,具有较高的拉伸强度,能承受正常眼压,且热稳定性较好.在浸泡后期,n-HA/CS/PVA复合材料对Ca2+的吸附和释放达到动态平衡;而其表面含有微量的纳米羟基磷灰石沉积,有利于纤维细胞的长入.  相似文献   

5.
本文以聚乙烯醇(PVA)、纳米羟基磷灰石(n-HA)和丝素蛋白(SF)为原料,采用物理共混法、反复冷冻解冻法和NaCl粒子制孔法制得了具有三维结构的PVA/n-HA/SF多孔复合水凝胶,以作为人工角膜支架材料。测试了这种多孔复合材料的含水率、拉伸强度和断裂伸长率,并对其进行了红外谱图、X射线衍射光谱、热重及电子扫描显微镜分析。结果表明,丝素蛋白的添加量增加时,多孔复合水凝胶的含水率相应提高,含水率稳定在75~82%之间;其拉伸强度在0.43~1.00MPa之间,断裂伸长率在183.76~237.53%之间,可以达到人体正常状态下眼压要求,其中复合水凝胶的最佳配比为:PVA:SF:n-HA=10:5:1。;IR和XRD分析表明复合水凝胶在物理交联过程中,各种成分均匀复合,无化学键变化;扫描电镜显示该水凝胶材料具有均匀的三维多孔结构。  相似文献   

6.
以水为增塑剂,利用分子复合和增塑的方法,制备了聚乙烯醇(PVA)/β-磷酸三钙(β-TCP)复合材料,通过傅里叶变换红外光谱(FTIR)、X射线光电子能谱(XPS)、扫描电子显微镜(SEM)、差示扫描热分析(DSC)及热重分析(TGA)等手段研究了PVA与β-TCP间的相互作用及其对复合材料热性能和力学性能的影响.结果表明,β-TCP中的Ca2+与PVA中的OH形成配位键,破坏了PVA自身氢键的缔合状态,使PVA中的小分子脱除反应在更高的温度下进行,提高了PVA的热稳定性,当β-TCP质量分数为30%时,复合材料的初始分解温度由PVA的235.4℃提高到268.6℃,增塑剂水可显著降低PVA的熔点,从而获得约138℃的热塑加工窗口.β-TCP在PVA基体中的良好分散及其与PVA基体间的良好界面相互作用使复合材料具有优良的力学性能.  相似文献   

7.
邓新旺  胡惠媛  罗仲宽  吴茂盛  周莉 《应用化学》2015,32(12):1358-1363
通过循环冷冻-解冻法,制成了肝素钠/聚乙烯醇(HS/PVA)复合水凝胶材料。 探讨了不同质量分数肝素钠对复合水凝胶材料的可见光透过率、含水率、亲水性、力学性能以及肝素钠释放量的影响。 结果表明,复合水凝胶的可见光透过率为92%以上,溶胀平衡的含水率为72%~78%,亲水性较纯PVA水凝胶有所提升,拉伸强度和断裂伸长率都稍有下降。 细胞粘附实验结果表明,适量的肝素钠的释放可以达到减少细胞粘附的效果。 这种HS/PVA复合水凝胶材料有望用作人工角膜中心区材料。  相似文献   

8.
赫玉欣  张玉清 《应用化学》2011,28(7):764-769
用熔融挤出的方法制备了甘油塑化热塑性淀粉(TPS)/聚乙烯醇(PVA)/蒙脱土(MMT)纳米复合材料,添加蒙脱土和聚乙烯醇用以提高热塑性淀粉材料的力学性能。 在相对湿度50%的条件下,复合材料的XRD衍射谱图和透射电子显微镜测试表明,MMT以剥离状态均匀分布在TPS/PVA基体中;力学测试表明,当MMT的质量分数从0%增至5%时,复合材料的力学性能明显提高。 当蒙脱土的质量分数为3%时,复合材料最大抗张强度达到13.24 MPa,杨氏模量达到61.46 MPa。 这说明蒙脱土在复合材料中可以起到物理交联点的作用,提高了复合材料的力学性能。  相似文献   

9.
逄勇  张宁  张建明 《化学研究》2023,(5):430-435
近些年来,由于不可再生资源的消耗问题以及塑料垃圾等造成的白色污染等环境问题,人们对绿色环保产品的需求日益增长,高性能生物降解材料的开发受到越来越多的关注。采用醇解度适中的1788型聚乙烯醇(PVA1788)和玉米淀粉为原料,添加少量甘油与氯化钙,通过溶液流延法制得了聚乙烯醇/淀粉(PVA/ST)复合材料。研究了淀粉添加量以及增塑剂配比对PVA/ST复合材料结构与性能的影响。结果表明:淀粉的加入会导致PVA的结晶度明显下降,黏度提高,同时因为淀粉的高脆性,导致复合材料模量明显提高,力学性能明显下降;而加入的甘油和氯化钙作为增塑剂,能够减弱PVA和ST的分子间作用力,降低结晶度,提高材料的柔韧性。当加入甘油与氯化钙的比例均为PVA和ST总含量的10%时,复合材料的力学性能最优,拉伸强度约为16 MPa,断裂伸长率约为410%。  相似文献   

10.
以纳米羟基磷灰石(n-HA)、聚酰胺(PA)、壳聚糖(CS)为原料,以聚乙烯吡咯烷酮(PVP)与氯化钠(Na Cl)为致孔剂采用溶液共混法和粒子致孔法,载入抗生素红霉素(EM),研制一种新型多孔载药纳米羟基磷灰石/聚酰胺/壳聚糖/红霉素复合骨组织修复材料。研究了其孔隙率、抗压强度、X射线衍射谱图、红外光谱图、SEM和药物释放曲线,探讨了CS含量及红霉素释放量对材料性能的影响。结果表明,当PVA/Na Cl为1:6时,材料总孔隙率为72%和抗压强度为0.71MPa,扫描电镜显示多孔n-HA/PA/CS复合材料孔的直径在100~500μm之间,适合血管、骨组织的长入以及营养物质的运输。当CS的含量从0增到30%时复合材料药物的释放量从41.6%增到82.4%,表明可降解材料CS的加入有利于药物溶出。  相似文献   

11.
测定了聚乙烯醇(PVA)和壳聚糖(CS)复合水凝胶的平衡含水量、熔融焓、等温溶胀动力学和非等温失水动力学等性质,讨论了水凝胶的组成和制备参数对这些性质的影响.结果显示:PVA/CS复合水凝胶具有适宜于软骨修复替代材料的网络结构和平衡含水量.CS与PVA复合减弱了凝胶的结晶度,但却增强了水与凝胶支架的相互作用.尽管水凝胶力学拉伸强度有所降低,但却优化了凝胶的生物相容性和降解能力.PVA/CS复合水凝胶是一种潜在的软骨修复材料,作为一种理论研究的模型体系,它将促进热力学在复杂医用材料方面的应用.  相似文献   

12.
层状纳米纤维素膜/PVA复合水凝胶的制备与力学性能研究   总被引:1,自引:0,他引:1  
采用叠层复合与物理相分离的方法制备了层状纳米细菌纤维素(BC)膜/聚乙烯醇( PVA)复合水凝胶.研究了聚乙烯醇的质量百分数、BC膜的复合层数以及制备条件对复合水凝胶力学性能的影响;通过扫描电镜( SEM)观察比较了复合水凝胶中BC膜层与PVA界面结合情况.结果表明,复合水凝胶的力学性能与PVA的质量百分数和BC膜含水...  相似文献   

13.
Hydrogels have potential applications in many fields, but the poor mechanical strength has limited their further development. In this article, we designed a high-strength hydrogel with an interpenetrating network (IPN) structure from polyacrylamide (PAM) and poly(vinyl alcohol) (PVA). Synthesis parameters, such as PVA/AM mass ratio, crosslinker dosage and elongation time were carried out for high tensile strength and elongation. The results showed that chemical crosslinking, physical entanglement and PVA precipitates were the dominant parameters for the improvement of mechanical properties. The PVA structure transferred from crystal to amorphous due to intermolecular and intramolecular interactions (such as hydrogen bond and self-crosslinking). PVA precipitates scatterred in the brittle PAM matrix homogeneously which dispersed the applied stress and improved the hydrogel toughness. The tensile strength and elongation were extremely high, they were 2.4 MPa and 3100%, respectively. The simple method is versatile in synthesizing high-strength IPN hydrogels using many kinds of polymer species.  相似文献   

14.
Poly(vinyl alcohol)/hydroxyapatite(PVA/HA) composite hydrogel was successfully in-situ synthesized via three cycles of freezing-thawing. The composition and structure of products were investigated by X-ray diffraction( XRD), Fourier transformed infrared spectroscopy(FTIR) and scanning electron microscopy(SEM). The influence of different preparation methods and contents of material on the mechanical properties of PVA/HA composite hydrogel was discussed through tensile and compressive tests. The template of PVA could avoid the agglomeration of HA particles, which improves the mechanical properties of the composite hydrogel effectively. The tensile strength, modulus and compressive performances of the PVA/HA composite hydrogel prepared by the in-situ synthesis method were better than those of hydrogel obtained by the simple blend metliod. In addition, the effect of the content of PVA, HA, and the pH value on tlie properties of tlie PVA/HA composite hydrogel has been discussed in detail.  相似文献   

15.
Abstract

An injectable composite hydrogel composed of polyvinyl alcohol (PVA) and bioactive glass (BG) particles were synthesized by a physical crosslinking approach. The morphology, mechanical properties, and viscoelasticity of the PVA/BG composite hydrogel were characterized. Scanning electronic microscopy (SEM) showed uniform and homogeneous distribution of BG particles throughout the composite hydrogel. The incorporation of 2.5?wt% of BG particles in the composite hydrogel formulations, enhanced the static compressive strength and static elastic modulus by 325% and 150%, respectively. The storage molds (G′) was greater than the loss modules (G′′) at all the frequency range studied, which revealed a self-standing elastic composite hydrogel with a smooth injectability. The PVA/BG composite hydrogel was also implanted subcutaneously in the dorsal region of adult male rats. After 4?weeks of implantation, no inflammatory cells were seen within and around the implant, which indicated that the composite hydrogel was biocompatible. The properties of the synthesized injectable PVA/BG composite hydrogel demonstrate its capability toward bone regeneration.  相似文献   

16.
以聚乙烯醇(PVA)和壳聚糖(CS)为原料, 采用循环冻融法制备了前驱体水凝胶(PVA-CS), 并经过浸泡氯化钠溶液和透析后处理构筑了强韧抗溶胀复合水凝胶(PVA-CS-6.16-30). 采用扫描电子显微镜(SEM)、 傅里叶变换红外光谱仪(FTIR)、 X射线衍射分析仪(XRD)、 差示扫描量热分析仪(DSC)及流变仪表征了两种水凝胶的微观结构, 采用拉力机测试了其机械性能. 结果表明: 由于结晶微区、 氢键及链缠结等协同交联作用, PVA-CS-6.16-30具备高效能量耗散机制. 与前驱体PVA-CS相比, PVA-CS-6.16-30的交联密度由7.69×10?4 mol/cm3增加至9.97×10?4 mol/cm3, 自由水含量由62.8%降低至52.6%, 网络尺寸由6.11 nm降低至5.21 nm, 凝胶分数由58.6%增加至86.8%, PVA结晶度由14.8%增加至17.2%, 其抗拉强度、 断裂伸长率、 韧性及抗压强度分别为2.9 MPa, 229%, 3.3 MJ/m3和7.6 MPa. 此外, 该复合水凝胶还具有优异的耐溶胀与抗蠕变性能. 在37 ℃的PBS缓冲溶液中浸泡7 d后, 其抗拉和抗压强度分别高达2.8和7.5 MPa, 优于常见水凝胶. 商品化的原料、 简单的构筑方法及优异的综合性能有望推动水凝胶在组织工程和生物医疗领域的应用.  相似文献   

17.
Stretchable conductive hydrogels have received significant attention due to their possibility of being utilized in wearable electronics and healthcare devices. In this work, a semi-interpenetrating polymer network (SIPN) strategy was employed to fabricate a set of flexible, stretchable and conductive composite hydrogels composed of polyvinyl alcohol (PVA) in the presence of glutaraldehyde as the crosslinker, HCl as the catalyst and poly(3,4-ethylenedioxythiophene):polystyrenesulfonate (PEDOT:PSS) as the conductive medium. The results from FTIR, Raman, SEM and TGA indicate that a chemical crosslinking network and interactions of PVA and PEDOT:PSS exist in the SIPN hydrogels. The swelling ratio of hydrogels decreased with increasing content of PEDOT:PSS. Due to the chemical crosslinking network and interactions of PVA and PEDOT:PSS, PVA networks semi-interpenetrated with PEDOT:PSS exhibited excellent tensile and compression properties. The tensile strength and elongation at breakage of the composite hydrogels with 0.14 wt% PEDOT:PSS were 70 KPa and 239%, respectively. The compression stress of the composite hydrogels with 0.14 wt% PEDOT:PSS at a strain of 50% was about 216 KPa. The electrical conductivity of the hydrogels increased with increasing PEDOT:PSS content. The flexible, stretchable and conductive properties endow the composite hydrogel sensor with a superior gauge factor of up to 4.4 (strain: 100%). Coupling the strain sensing capability to the flexibility, good mechanical properties and high electrical conductivity, we consider that the designed PVA/PEDOT:PSS composite hydrogels have promising applications in wearable devices, such as flexible electronic skin and sensitive strain sensors.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号