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1.
取向静电纺丝纳米纤维的制备及应用研究进展   总被引:1,自引:0,他引:1  
简单描述了静电纺丝的基本装置、原理;为制得高性能的取向纳米纤维,对静电纺丝中出现的不稳定性进行了研究,介绍了三种不稳定状况,并分析了其产生原因.列举了通过改变接收装置、控制电场和附加磁场等方法,改进静电纺丝技术来制取连续取向的纳米纤维,并对各种方法进行了简单的评价,指出磁化静电纺丝(MES)是目前制备取向纳米纤维最具有发展前景的方法.简要介绍了取向纳米纤维在生物组织工程领域方面的应用,并对其未来作了展望.  相似文献   

2.
由于胶原蛋白静电纺丝纳米纤维具有胶原蛋白的生物活性以及纳米结构材料的优异性能,其在生物医学领域的研究和应用开发取得了非常大的进展。本文首先综述了胶原蛋白静电纺丝纳米纤维的研究现状,讨论了胶原蛋白静电纺丝纳米纤维在组织工程、止血及伤口愈合、载药和防粘连等生物医学领域的应用,最后针对胶原蛋白静电纺丝纳米纤维存在的问题及其未来的发展方向进行了展望。  相似文献   

3.
将生物材料通过静电纺丝制备成的纳米纤维,具有比表面积大、空隙率高、生物相容性好等优点,因此得到广泛研究。本文主要综述了近年来国内外静电纺丝制备丝素蛋白纳米纤维的研究现状,重点介绍了采用不同溶剂制备的纯丝素蛋白纳米纤维和丝素蛋白与其它材料复合制备的丝素蛋白复合纳米纤维,并展望丝素蛋白纳米纤维潜在的应用前景。  相似文献   

4.
郭世伟  苑春刚 《化学进展》2015,27(12):1841-1850
银纳米粒子由于其特殊的物理化学性质而被广泛应用,但其易团聚,影响实际使用效果。银纳米粒子可被负载到稳定载体上,获得具有优异性能的纳米复合材料,克服了团聚等缺限,大大改善应用效果和效率。采用静电纺丝技术制备银修饰纳米复合纤维材料是其中一种有效的方法,近年来在复合材料制备领域受到了广泛关注。本文综述了最近几年关于静电纺丝制备负载银纳米颗粒纤维复合材料及其应用的研究进展,重点介绍了静电纺丝制备负载银纳米纤维过程中纳米银的生成和负载方法,总结了有机主体和无机主体两种纺丝纤维的制备研究进展,详细介绍了负载银纺丝纤维在几个重要领域的应用及研究方向。  相似文献   

5.
由于纳米纤维在组织工程支架材料,药物传递载体等方面的潜在应用,使得具有高比表面积的静电纺丝纳米纤维得到了很大的关注。静电纺丝技术是一种简单、有效的微/纳米技术,而同轴静电纺丝则是在传统静电纺丝技术上发展起来的新方法,单步即可制备连续的壳一芯结构纳米纤维或中空纳米纤维。这也使得静电纺丝纳米纤维在组织工程和药物缓释等领域有...  相似文献   

6.
静电纺丝技术是目前制备纳米纤维最重要的方法之一,以其制备的纤维具有直径可控、比表面积大、孔隙率高等优点,因而被广泛应用于过滤、催化、传感器及生物医学等众多领域.以静电纺丝纤维为模板可进一步构建多级结构的功能性聚合物纳米纤维复合材料,拓宽其应用范围.本文着重概述了近年来基于静电纺丝技术的简单共混型、核壳结构及多级结构的聚合物纳米纤维复合材料的制备、结构及性能,并展望了其应用研究前景.  相似文献   

7.
静电纺丝是一种简单有效的制备聚合物纳米纤维的技术,在组织工程、药物控释和传感器等方面具有广泛的应用。采用静电纺丝技术制备得到的纳米纤维膜具有比表面积大、孔隙率高和易于分离回收等优点,可以作为一种优良的酶固定化载体,目前在酶固定化领域受到了广泛的关注。本文综述了近年来静电纺丝纳米纤维膜固定化酶的研究进展,在阐述静电纺丝纳米纤维膜制备技术的基础上,详细介绍了纳米纤维膜表面担载法和包埋法固定化酶的原理和方法,分析了不同固定化方法的优缺点,并讨论了静电纺丝纳米纤维膜固定化酶的应用前景,对静电纺丝纳米纤维膜固定化酶的发展方向进行了展望。  相似文献   

8.
静电纺丝是通过对聚合物溶液或熔体施加外电场制造纳米纤维的有效方法.电纺过程中,在静电力作用下聚合物射流快速鞭动,形成的纳米纤维无规堆砌,得到无纺布状的无规纳米纤维膜.这种纳米纤维膜具有极大的比表面积,已用于超高效过滤,在刨伤修复、组织工程、水处理等领域有广泛的应用前景.为了进一步拓展纳米纤维在纤维工业、纺织品、微制造等领域的应用,电纺纳米纤维的取向和连续长纱的制备研究受到科学家的重视,文献报道了多种纳米纤维取向方法.本文分析了纳米纤维膜无规堆砌结构的形成机理,总结了纳米纤维取向研究和连续长纱制备研究进展,特别介绍了基于静电作用分析提出的共轭电纺方法,讨论了取向纳米纤维的应用以及纳米纤维未来的研究方向.  相似文献   

9.
聚合物的静电纺丝   总被引:12,自引:0,他引:12  
李岩  黄争鸣 《高分子通报》2006,(5):12-19,51
静电纺丝法是聚合物溶液或熔体在静电作用下进行喷射拉伸而获得纳米级纤维的纺丝方法.由纳米纤维制得的无纺布,具有孔隙率高、比表面积大、纤维精细程度与均一性高、长径比大等优点,从而赋予了静电纺丝纤维广泛的应用前景,它已在国内外引起了广泛的关注.本文介绍了静电纺丝的装置、基本原理及静电纺丝制备纳米纤维的研究进展,同时也叙述了其在各个领域的应用,最后展望了静电纺丝制备纳米纤维的发展方向及前景.  相似文献   

10.
静电纺丝纳米纤维具有比表面积大、孔隙率高及密度低等优势,是电化学储能材料的理想候选者之一.本文综述了近年来静电纺丝碳纳米纤维、金属氧化物/硫化物/氮化物、导电聚合物及其复合材料在超级电容器领域的研究及应用进展,探讨了材料组成、结构与电化学电容性能之间的关系,并对静电纺丝纳米纤维基电极材料的发展前景进行了展望.这将为新型高性能超级电容器电极材料的结构设计与可控制备提供新思路.  相似文献   

11.
12.
Utilization of polymers as biomaterials has greatly impacted the advancement of modern medicine. Specifically, polymeric biomaterials that are biodegradable provide the significant advantage of being able to be broken down and removed after they have served their function. Applications are wide ranging with degradable polymers being used clinically as surgical sutures and implants. To fit functional demand, materials with desired physical, chemical, biological, biomechanical, and degradation properties must be selected. Fortunately, a wide range of natural and synthetic degradable polymers has been investigated for biomedical applications with novel materials constantly being developed to meet new challenges. This review summarizes the most recent advances in the field over the past 4 years, specifically highlighting new and interesting discoveries in tissue engineering and drug delivery applications. © 2011 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys, 2011  相似文献   

13.
Magnesium alloys are promising biomaterials as biodegradable implant for orthopedic applications. However, their low corrosion resistance and poor bioactivity have prohibited their implant applications. In order to enhance these two properties, a nano‐grain merwinite coating was prepared on magnesium alloy. Its corrosion and the bioactivity behavior were characterized with electrochemical and immersion tests. The results showed that the nano‐grain merwinite coating can improve both the corrosion resistance and the bioactivity of the magnesium alloy making it an appropriate material for biodegradable bone implants. Copyright © 2014 John Wiley & Sons, Ltd.  相似文献   

14.
Implant failure is one of the major concerns in the biomaterials field. Several factors have been related to the fail but in general these biomaterials do not exhibit comparable physical, chemical or biological properties to natural tissues and ultimately, these devices can lead to chronic inflammation and foreign-body reactions. Starch-based biodegradable materials and composites have shown promising properties for a wide range of biomedical applications as well as a reduced capacity to elicit a strong reaction from immune system cells in vitro. In this work, blends of corn starch with ethylene vinyl alcohol (SEVA-C), cellulose acetate (SCA) and polycaprolactone (SPCL), as well as hydroxyapatite (HA) reinforced starch-based composites, were investigated in vivo. The aim of the work was to assess the host response evoked for starch-based biomaterials, identifying the presence of key cell types. The tissues surrounding the implant were harvested together with the material and processed histologically for evaluation using immunohistochemistry. At implant retrieval there was no cellular exudate around the implants and no macroscopic signs of an inflammatory reaction in any of the animals. The histological analysis of the sectioned interface tissue after immunohistochemical staining using ED1, ED2, CD54, MHC class II and alpha/beta antibodies showed positively stained cells for all antibodies, except for alpha/beta for all the implantation periods, where it was different for the various polymers and for the period of implantation. SPCL and SCA composites were the materials that stimulated the greatest cellular tissue responses, but generally biodegradable starch-based materials did not induce a severe reaction for the studied implantation times, which contrasts with other types of degradable polymeric biomaterials.  相似文献   

15.
This review provides a glimpse of the potential of the biodegradable phos-phoryl-containing polymers in medical applications. Undoubtedly these polymerspossess unique properties that are yet to be fully understood. Many areas warrantfurther investigation and much optimization remains to be done. The fascinatingchemistry of phosphorus poses interesting hurdles but at the same time leavesample room for polymer scientists to exercise their creativity in designinginteresting biomaterials. As the mutual understanding between basic and clinicalscientists on the need of medical devices and the capabilities of these newbiomaterials expands, imaginative application of new biomaterials to other medi-cal applications can be expected.  相似文献   

16.
聚乳酸纳米复合材料的研究进展   总被引:3,自引:0,他引:3  
聚乳酸是一种重要的可生物降解/吸收高分子材料,广泛地用作可降解塑料、纤维和生物材料,市场前景广阔.它具有与聚烯烃相当的力学强度和加工性能,但耐热性和抗冲性较差.为满足各种应用的需要,其热性能、力学性能和气体阻隔性等尚需进一步提高.通过与无机纳米材料复合的方法,可以明显地提高聚乳酸的性能.本文介绍了近年来聚乳酸有机-无机纳米复合材料的制备、结构与性能等方面的研究进展,对三者的相互关系进行了评述,并对今后的研究方向进行了展望.  相似文献   

17.
Biodegradable polymers belong to a family of polymer materials that found applications ranged from medical applications including tissue engineering, wound management, drugs delivery, and orthopedic devices, to packaging and films applications. For broadening their potential applications, biodegradable polymers are modified utilizing several methods such as blending and composites forming, which lead to new materials with unique properties including high performance, low cost, and good processability. This paper reviews the recent information about the morphology of blends consisting of both biodegradable and non-biodegradable polymers and associated mechanical, rheological, and thermal properties of these systems as well as their degradation behavior. In addition, the mechanical performance of composites based on biodegradable polymers is described.  相似文献   

18.
Synthetic biomaterials serve as a cornerstone in the development of clinically focused regenerative medicine therapies that aim to reduce suffering and prolong life. Recent improvements in biodegradable elastomeric materials utilize natural extracellular matrix proteins as inspiration to yield a new class of materials with superior degradation kinetics, desirable biocompatibility profiles, and mechanical properties that closely match those of soft tissues. This review describes several classes of synthetic biodegradable elastomers and associated fabrication techniques that are relevant to scaffold development. The application of these materials to select tissue engineering models is also discussed.  相似文献   

19.
Polyurethanes with controllable biodegradable properties have been considered for biomedical applications. However, the potential toxicity of their biodegraded by-products is still a concern. In this study, biodegradable polyurethanes based on poly(?-caprolactone) (PCL) and/or poly(ethylene glycol) as soft segments and biodegradable polyurethanes containing montmorillonite nanoparticles were synthesized and were subjected to in vitro biodegradation for 4 months. The post-degraded polyurethanes and nanocomposites were characterized by infrared spectroscopy (FTIR), X-ray diffraction (XRD) and small angle X-ray scattering (SAXS). The toxicity of the biodegradation by-products was evaluated by measuring their effect on the viability of retinal cells. FTIR results indicated that hard segments of the biomaterials were preserved during biodegradation, and suggested that the ester bonds of the PCL incorporated into the soft segments were hydrolytic broken. XRD data indicated also that the soft segments crystallized as a result of the hydrolysis of PCL ester bonds and re-organization of the amorphous phase during annealing at 37 °C. As the biodegradation of the biomaterials induced the formation of soft segment lamella crystals, a complex nanostructure was formed, resulting in the enhancement of the small angle X-ray scattering. The by-products were non-cytotoxic to the retinal cells. These results suggest that the hydrolytic unstable polyurethanes and nanocomposites can be possible candidates for ophthalmological applications.  相似文献   

20.
Hybrids, produced by hybridization of proteins, peptides, DNA, and other new biomolecules with polymers, often have unique functional properties. These properties, such as biocompatibility, stability and specificity, lead to various smart biomaterials. This review mainly introduces biomolecule-polymer hybrid materials by reversible deactivation radical polymerization(RDRP), emphasizing reverse addition-fragmentation chain transfer(RAFT) polymerization, and nitroxide mediated polymerization(NMP). It includes the methods of RDRP to improve the biocompatibility of biomedical materials and organisms by surface modification. The key to the current synthesis of biomolecule-polymer hybrids is to control polymerization. Besides, this review describes several different kinds of biomolecule-polymer hybrid materials and their applications in the biomedical field. These progresses provide ideas for the investigation of biodegradable and highly bioactive biomedical soft tissue materials. The research hotspots of nanotechnology in biomedical fields are controlled drug release materials and gene therapy carrier materials. Research showed that RDRP method could improve the therapeutic effect and reduce the dosage and side effects of the drug.Specifically, by means of RDRP, the original materials can be modified to develop intelligent polymer materials as membrane materials with selective permeability and surface modification.  相似文献   

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