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1.
用化学气相沉积法在高强度碳纤维表面生长碳纳米管(CNTs)多尺度增强体,研究了加载金属催化剂成分对CNTs生长前后碳纤维强度的影响。结果表明:在500℃金属催化剂成分对还原后催化剂颗粒的形貌和碳纤维的强度影响不大,但是对CNTs的生长速度和碳纤维表面生长CNTs多尺度增强体的强度有显著的影响。高催化效率不仅有利于碳纤维表面CNTs的高效合成,还促进碳纤维表面损伤的修复。Fe-Cu和Ni-Cu催化体系具有较高的催化效率,碳纤维表面催化生长CNTs后其拉伸强度分别提高了12.26%和12.80%。  相似文献   

2.
用化学气相沉积法在高强度碳纤维表面生长碳纳米管(CNTs)多尺度增强体,研究了加载金属催化剂成分对CNTs生长前后碳纤维强度的影响。结果表明:在500℃金属催化剂成分对还原后催化剂颗粒的形貌和碳纤维的强度影响不大,但是对CNTs的生长速度和碳纤维表面生长CNTs多尺度增强体的强度有显著的影响。高催化效率不仅有利于碳纤维表面CNTs的高效合成,还促进碳纤维表面损伤的修复。Fe-Cu和Ni-Cu催化体系具有较高的催化效率,碳纤维表面催化生长CNTs后其拉伸强度分别提高了12.26%和12.80%。  相似文献   

3.
通过电化学阳极氧化法改性碳纤维表面,利用浸渍法在连续的碳纤维表面加载了均匀的催化剂前驱体涂层,并通过化学气相沉积法(CVD)在碳纤维表面催化生长了均匀、规整的碳纳米管。利用场发射扫描电镜(FESEM)研究了电化学氧化电流强度对碳纤维表面加载催化剂颗粒的形貌与碳纤维表面催化生长碳纳米管形貌的影响,发现最佳的电化学氧化电流强度为0.4 A;Co作为催化剂时,500℃气相沉积10min后制备的复合材料层间剪切强度与未做任何处理的碳纤维及脱浆后的碳纤维作为增强体时相比,分别提高了11.0%与26.5%。  相似文献   

4.
在碳纤维(CF)表面直接原位生长碳纳米管(CNTs),可有效避免CNTs分散不均的问题,充分发挥二者的优势,对获得高层间性能的碳纤维增强树脂基复合材料(CNTs-CF/EP)具有重要的意义。本文对CF进行表面改性处理,在CF表面负载催化剂粒子,然后通过原位生长法并在助催化剂噻吩的协同作用下,在CF表面固相生长了CNTs。此方法得到的CNTs-CF,不仅有效避免CNTs在基体中的相互缠绕、难以分散等问题。而且由于生长CNTs的碳源主要来自CF,二者结合强度较高,对提高CNTs-CF/EP的层间性能非常有利。借助于SEM、XRD及FT-IR等分析测试手段,研究了催化剂Ni(NO_3)_2·6H_2O浓度对表面长有CNTs的CF的形貌、结构及其性能的影响。结果表明:在适当的催化剂浓度(0.2mol·L~(-1))负载中,CF表面能够生长出结合牢固、垂直生长且均匀分布的CNTs,但力学性能有所下降。  相似文献   

5.
利用电化学阳极氧化法改性碳纤维表面,开发了在连续碳纤维表面简单、高效、均匀地加载催化剂涂层的工艺。通过系统研究电化学改性强度对碳纤维表面物理与化学特性、催化剂颗粒与CNTs形貌、多尺度增强体拉伸强度及其增强复合材料层间剪切强度的影响,优化了碳纤维表面电化学改性工艺。结果表明:催化剂颗粒的形貌与分布不仅影响碳纤维表面沉积的CNTs的形貌,而且影响最终碳纤维表面生长CNTs多尺度增强体及其复合材料的力学性能。  相似文献   

6.
针对玄武岩纤维(CBF)表面光滑且惰性,在与树脂基体复合制备复合材料时二者结合能力较低的问题,采用化学镀镍在玄武岩纤维表面均匀加载镍催化剂,借助化学气相沉积(CVD)生长碳纳米管(CNTs)。用场发射扫描电镜(FESEM)、透射电镜(TEM)、拉曼光谱(Raman)等方法对生长的CNTs进行表征,并测试复合材料的界面剪切强度。结果表明化学镀镍工艺能在CBF表面均匀加载镍催化剂,有利于CVD生长CNTs。工艺最佳条件为施镀时间15min、500℃下生长10min,此条件下生长的CNTs整齐排列在CBF表面,结晶性较好且呈中空管状。采用生长了CNTs的CBF制备复合材料的界面强度提高了10%。  相似文献   

7.
采用化学气相沉积(CVD)法在碳纤维(CF)表面原位生长碳纳米管(CNTs)。考察了不同催化剂、沉积温度、氢气流量以及样品距进气口距离等工艺参数对CNTs-CF生长的影响。利用SEM和高分辨透射电子显微镜(HRTEM)对CNTs-CF形貌和微结构进行了表征和分析。结果表明:在CF表面原位生长的CNTs为多壁结构,其中以Ni为催化剂得到的CNTs直径小、分布均匀;在600~750℃温度范围内,随着温度的升高,CNTs直径和长度减小,产量降低;随着氢气流量的增加,CNTs直径和长度均增加;距进气口30cm,在CF表面得到的CNTs覆盖率高、直径小且分布窄,有利于制备高质量CNTs。  相似文献   

8.
以环己烷为碳源、二茂铁为催化剂前躯,采用浮游催化法成功的在碳纤维表面生长了碳纳米管(CNT),制备了多尺度杂化材料CNTs/CF。实验重点考察了反应温度、二茂铁浓度、载气等参数对CNT在纤维表面生长的影响,通过扫描电镜(SEM)、投射电镜(TEM)研究了CNTs/CF的形貌及产物CNT的微观结构。当固定反应温度为820℃、二茂铁-环己烷浓度为2g/100mL时,随着氢气在载气中含量在0~100%范围内变化,产物CNT直径亦有86nm降低至39nm。通过单丝拉伸测试发现,相比初始碳纤维,不同长度的CNTs/CF单纤维强度下降幅度均在10%以内。  相似文献   

9.
采用透射电镜(TEM)、X射线光电子能谱(XPS)、红外光谱(FT-IR)、SCR反应和程序升温脱附(TPD)等手段研究了碳纳米管(CNTs)担载的五氧化二钒(V2O5/CNTs)催化剂的形貌、表面形态以及SO2对选择催化NO还原活性的影响.结果表明,SO2对V2O5/CNTs催化剂的催化活性具有明显的促进作用,其促进作用源于SO2在催化剂表面的吸附.吸附的SO2主要位于碳表面而非钒表面,而且这种促进作用与V2O5和碳表面之间协同作用有关.  相似文献   

10.
舒扬  齐乐华  冯雷  司子书  宋强  李贺军 《材料导报》2015,29(14):55-57, 86
采用注射化学气相沉积(Chemical vapor deposition,CVD),以乙二胺(Ethylenediamine,EDA)为促进剂,在未涂覆无机陶瓷涂层的碳纤维表面直接生长了定向碳纳米管(Carbon nanotubers,CNTs)阵列。研究表明:碳纤维表面的定向CNTs沿纤维轴向呈对称分布,生长密度约为5×109 tubes/cm2,长度可达18μm。定向CNTs具有多壁、竹节状结构,平均直径约为37nm。EDA对CNTs的生长形貌影响显著,是CNTs在碳纤维表面定向生长的关键。  相似文献   

11.
In-situ growing carbon nanotubes(CNTs)directly on carbon?bers(CFs)always lead to a degraded tensile strength of CFs and then a poor?ber-dominated mechanical property of carbon/carbon composites(C/Cs).To solve this issue,here,a novel carbon?ber-based multiscale reinforcement is reported.To synthesize it,carbon?bers(CFs)have been?rst grafted by graphene oxide(GO),and then carbon nanotubes(CNTs)have been in-situ grown on GO-grafted CFs by catalytic chemical vapor deposition.Characterizations on this novel reinforcement show that GO grafting cannot only nondestructively improve the surface chemical activity of CFs but also protect CFs against the high-temperature corrosion of metal catalyst during CNT growth,which maintains their tensile properties.Tensile property tests for unidirectional C/Cs with different preforms show that this novel reinforcement can endow C/C with improved tensile properties,32% and 87%higher than that of pure C/C and C/C only doped with in-situ grown CNTs.This work would open up a possibility to fabricate multiscale C/Cs with excellent global performance.  相似文献   

12.
基于制备碳/碳(C/C)复合材料的等温化学气相渗透(ICVI)技术,在1010~1100℃用Fe催化裂解工业天然气可在碳毡内原位合成出碳纳米管(CNTs).扫描电镜(SEM)观察结果表明,1060℃合成的CNTs具有较好的覆盖形貌和均匀管径(110~120nm)且纯净度高.高分辨率透射电镜(HRTEM)和Raman光谱测试结果进一步表明,该温度下合成的CNTs结晶度高,与碳纤维间结合力强.  相似文献   

13.
An effective carbon fiber/graphene oxide/carbon nanotubes (CF-GO-CNTs) multiscale reinforcement was prepared by co-grafting carbon nanotubes (CNTs) and graphene oxide (GO) onto the carbon fiber surface. The effects of surface modification on the properties of carbon fiber (CF) and the resulting composites was investigated systematically. The GO and CNTs were chemically grafted on the carbon fiber surface as a uniform coating, which could significantly increase the polar functional groups and surface energy of carbon fiber. In addition, the GO and CNTs co-grafted on the carbon fiber surface could improve interlaminar shear strength of the resulting composites by 48.12% and the interfacial shear strength of the resulting composites by 83.39%. The presence of GO and CNTs could significantly enhance both the area and wettability of fiber surface, leading to great increase in the mechanical properties of GO/CNTs/carbon fiber reinforced composites.  相似文献   

14.
Dense carbon nanotubes (CNTs) were grown uniformly on the surface of carbon fibers and glass fibers to create hierarchical fibers by use of floating catalyst chemical vapor deposition. Morphologies of the CNTs were investigated using scanning electronic microscope (SEM) and transmission electron microscope (TEM). Larger diameter dimension and distinct growing mechanism of nanotubes on glass fiber were revealed. Short carbon and glass fiber reinforced polypropylene composites were fabricated using the hierarchical fibers and compared with composites made using neat fibers. Tensile, flexural and impact properties of the composites were measured, which showed evident enhancement in all mechanical properties compared to neat short fiber composites. SEM micrographs of composite fracture surface demonstrated improved adhesion between CNT-coated fiber and the matrix. The enhanced mechanical properties of short fiber composites was attributed to the synergistic effects of CNTs in improving fiber–matrix interfacial properties as well as the CNTs acting as supplemental reinforcement in short fiber-composites.  相似文献   

15.
In this study carbon nanotubes (CNTs) were grown on carbon fibers to enhance the in-plane and out-of-plane properties of fiber reinforced polymer composites (FRPs). A relatively low temperature synthesis technique was utilized to directly grow CNTs over the carbon fibers. Several composites based on carbon fibers with different surface treatments (e.g. growing CNTs with different lengths and distribution patterns and coating the fibers with a thermal barrier coating (TBC) layer) were fabricated and characterized via on- and off-axis tensile tests. The on-axis tensile strength and ductility of the hybrid FRPs were improved by 11% and 35%, respectively, due to the presence of the TBC and the surface grown CNTs. This configuration also exhibited 16% improvement on the off-axis stiffness. Results suggest that certain CNT growth patterns and lengths are more pertinent than the other surface treatments to achieve superior mechanical properties.  相似文献   

16.
采用浓硫酸/浓硝酸氧化处理多壁碳纳米管(MWCNTs),再将氧化后的碳纳米管与硅烷偶联剂(KH560)进行接枝,制备了硅烷偶联剂表面化学修饰的MWCNTs。在此基础上,将改性前后的碳纳米管分散在环氧树脂体系中,涂覆处理碳纤维。研究处理前后碳纤维力学性能和界面性能的变化。通过红外光谱(FTIR)和透射电镜(TEM)分析,表明KH560已成功接枝到多壁碳纳米管上;通过分散性实验证明了改性后的碳纳米管分散性提高;对处理后的碳纤维进行力学性能测试,并用扫描电镜(SEM)观察分析断面形态变化,结果表明,当碳纳米管的含量为0.5%时,改性碳纳米管处理的碳纤维拉伸强度和拉伸模量分别提高23.83%和7.11%,界面性能增强。  相似文献   

17.
KOH活化处理碳纳米管对其负载非晶态NiP催化性能的影响   总被引:1,自引:0,他引:1  
经KOH活化处理和未经活化处理的碳纳米管分别用于负载非晶态NiP合金.以苯加氢为探针反应,研究了KOH活化处理温度和时间对碳纳米管的性质及其负载非晶态NiP催化剂活性的影响.研究结果表明:碳纳米管经KOH处理可以提高其负载非晶态NiP催化剂的催化活性,催化剂活性随活化温度升高和活化时间延长而增加.由于KOH处理改变了碳纳米管的微观结构,增加了其比表面积,所以非晶态NiP在碳纳米管上更易沉积分散,其负载的非晶态NiP合金催化剂的催化活性较高.  相似文献   

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