期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Preparation and Characterization of Tetracomponent ZnO/SiO<sub>2</sub>/SnO<sub>2</sub>/TiO<sub>2</sub>Composite Nanofibers by Electrospinning
1
作者 Chao Song Xiangting Dong 《Advances in Chemical Engineering and Science》 2012年第1期108-112,共5页
[Zn(CH3COO)2 + PVP]/[C2H5O)4Si + PVP]/[SnCl4 + PVP]/[Ti(OC4H9)4 + CH3COOH + PVP] precursor composite fibers have been fabricated through self-made electrospinning equipment via electrospinning tech-nique. ZnO/SiO2/SnO... [Zn(CH3COO)2 + PVP]/[C2H5O)4Si + PVP]/[SnCl4 + PVP]/[Ti(OC4H9)4 + CH3COOH + PVP] precursor composite fibers have been fabricated through self-made electrospinning equipment via electrospinning tech-nique. ZnO/SiO2/SnO2/TiO2 composite nanofibers were obtained by calcination of the relevant precursor composite fibers. The samples were characterized by thermogravimetric-differential thermal analysis (TG-DTA), X-ray diffractometry (XRD), Fourier transform infrared spectroscopy (FTIR), and Scanning electron microscopy (SEM). TG-DTA analysis reveals that solvents, organic compounds and inorganic in the precursor composite fibers are decomposed and volatilized totally, and the mass of the samples kept constant when sintering temperature was above 900?C, and the total mass loss percentage is 88%. XRD results show that the precursor composite fibers are amorphous in structure, and pure phase ZnO/SiO2/SnO2/TiO2 com-posite nanofibers are obtained by calcination of the relevant precursor composite fibers. FTIR analysis manifests that pure inorganic oxides are formed. SEM analysis indicates that the width of the precursor composite fibers is ca. 1.485 ± 0.043 μm. The width of the ZnO/SiO2/SnO2/TiO2 composite nanofibers is ca. 1145.098 ± 68.093 nm. 展开更多
关键词 ZnO/SiO2/sno2/TiO2 Tetracomponent composite nanofiberS ELECTROSPINNING
下载PDF
三维SnO2/C/rGO复合纤维膜电极制备及储锂性能 被引量:1
2
作者 杨震宇 魏海燕 《河南师范大学学报(自然科学版)》 CAS 北大核心 2019年第4期56-63,F0002,共9页
三维(3D)纳米纤维复合膜电极结构设计,避免了电极片制备过程中导电剂、黏结剂的添加,增强了电解液的浸润能力,对改善锂离子电池容量及倍率性能具有重要的价值和意义.采用同步静电纺丝和静电喷雾技术,结合氩气煅烧技术,制备了3D网络结构S... 三维(3D)纳米纤维复合膜电极结构设计,避免了电极片制备过程中导电剂、黏结剂的添加,增强了电解液的浸润能力,对改善锂离子电池容量及倍率性能具有重要的价值和意义.采用同步静电纺丝和静电喷雾技术,结合氩气煅烧技术,制备了3D网络结构SnO2/C/rGO复合纤维薄膜电极.这种由一维(1D)SnO2/C纳米线组合二维(2D)石墨片构成3D纳米复合纤维薄膜电极,一方面通过碳纤维连续包覆SnO2颗粒,有利于缓解SnO2充放电过程中剧烈的体积变化,增强其稳定性;另一方面通过碳纤维与二维石墨烯复合构成3D网络结构,有利于改善纤维膜电极的导电性,进而提高其倍率性能.研究表明,制备的SnO2/C/rGO复合纤维膜电极展示了其优良的放电容量、倍率性能及循环稳定性.于电流密度为0.4、0.8、1.6、2.4和4A·g^-1时,10次循环后放电容量分别达到797、659、626、534和468mAh·g^-1,且当电流密度回落至0.4A·g^-1时放电容量可恢复到709mAh·g^-1;4A·g^-1充放电540次电极容量仍可达457mAh·g^-1,库伦效率接近100%. 展开更多
关键词 同步静电纺丝和静电喷雾技术 sno2/C/rGO 纳米纤维复合膜 电极
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部