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1.
简化的溶胶凝胶法合成LiMn2-xLaxO4及电性能研究   总被引:1,自引:0,他引:1  
采用以水溶液作为反应介质的简化的溶胶凝胶法制备了LiMn2O4和稀土La掺杂的LiMn1.98La0.02O4粉体材料, 此方法工艺简单, 容易控制, 制备周期短. 利用XRD, SEM对材料粉体进行结构形态表征, 并以合成的材料为正极活性材料测试其充放电性能、循环伏安性能、 电化学阻抗谱性能. 实验结果表明: 材料LiMn2O4和LiMn1.98La0.02O4具有较好的尖晶石结构, 且颗粒分布均匀, 掺杂La的材料循环性能有较大改善. 以LiMn2O4为正极活性物质的扣式电池首次放电比容量129.38 mAh · g-1, 循环20次后容量保持在94%, 以LiMn1.98La0.02O4为正极活性物质的扣式电池首次放电比容量106.77 mAh · g-1, 循环20此后容量保持在96.2%.  相似文献   

2.
尖晶石LiMn2O4作为锂离子电池正极可大电流放电,且成本低、环境友好.采用溶胶-凝胶法制备尖晶石LiMn2O4及Al掺杂材料.使用X-射线衍射(XRD)和扫描电子显微镜(SEM)观察材料结构与形貌.结果表明,复合材料颗粒尺寸300-500 nm,呈类球形.电化学恒流充放电测试表明,Al掺杂尖晶石LiMn2O4电极的循环性明显提高,Al掺杂5%LiMn2O4(by mass,下同)正极在1C倍率充放电100周期循环后的容量保持率为98.2%,1C倍率充电、5C倍率放电下,100周期循环后其容量保持率为99.0%,表现出较优的电化学循环性能.  相似文献   

3.
本工作以聚甲基丙烯酸甲酯(PMMA)微球组装成的胶晶模板作为铸模, 溶胶-凝胶法辅助获得大孔LiNi0.8Co0.1Mn0.1O2 (NCM811)正极材料. 结果表明, 利用PMMA作为造孔剂, 形成了由100 nm的颗粒堆积而成的大孔结构, 这种结构有效地提高了材料的倍率性能和循环稳定性. 大孔NCM811在0.1C的首次放电比容量为190.3 mAh∙g-1. 2C倍率下NCM811纳米颗粒的放电比容量仅为129.3 mAh∙g-1, 而大孔NCM811的放电比容量为149.8 mAh∙g-1. 0.5C倍率下循环400次后大孔NCM811的容量保持率为83.02%, 明显高于纳米颗粒材料的38.59%.  相似文献   

4.
采用新型流变相法制备锂离子电池正极材料纳米-LiVOPO4. 采用X射线衍射、扫描电子显微镜以及电化学测试等手段对LiVOPO4的微观结构、表面形貌和电化学性能进行了表征. 结果表明, 采用流变相法制备的LiVOPO4由粒径大约在10-60 nm的小颗粒组成. 首次放电容量, 首次充电容量以及库仑效率分别为135.7 mAh·g-1, 145.8 mAh·g-1和93.0%. 0.1C (1C=160 mA·g-1)放电时, 60次循环后, 放电容量保持在134.2 mAh·g-1, 为首次放电容量的98.9%, 平均每次循环的容量损失仅为0.018%. 而1.0C和2.0C放电时的放电容量达到0.1C放电容量的96.5%和91.6%. 随着放电次数的增加, 电荷转移阻抗增加, 而锂离子在电极中的扩散系数达到10-11 cm2·s-1数量级. 实验结果显示采用流变相法制备的LiVOPO4是一种容量高、循环性能好、倍率性能好的锂离子电池正极材料.  相似文献   

5.
采用新型流变相法制备锂离子电池正极材料纳米-LiVOPO4.采用X射线衍射、扫描电子显微镜以及电化学测试等手段对LiVOPO4的微观结构、表面形貌和电化学性能进行了表征.结果表明,采用流变相法制备的LiVOPO4由粒径大约在10-60nm的小颗粒组成.首次放电容量,首次充电容量以及库仑效率分别为135.7mAh·g-1,145.8mAh·g-1和93.0%.0.1C(1C=160mA·g-1)放电时,60次循环后,放电容量保持在134.2mAh·g-1,为首次放电容量的98.9%,平均每次循环的容量损失仅为0.018%.而1.0C和2.0C放电时的放电容量达到0.1C放电容量的96.5%和91.6%.随着放电次数的增加,电荷转移阻抗增加,而锂离子在电极中的扩散系数达到10-11cm2·s-1数量级.实验结果显示采用流变相法制备的LiVOPO4是一种容量高、循环性能好、倍率性能好的锂离子电池正极材料.  相似文献   

6.
层状LiNi0.5Mn0.5O2正极材料的优化合成及电化学性能   总被引:1,自引:0,他引:1  
闻雷  其鲁  徐国祥 《化学通报》2006,69(4):267-271
采用沉淀法首先得到了Ni0.5Mn0.5(OH)2沉淀物,以其为原料与LiOH反应制备了LiNi0.5Mn0.5O2正极材料。采用XRD、SEM、充放电测试等研究了其结构与电化学性能,同时研究了Li过量时对材料电化学性能和结构的影响。SEM分析表明,Ni0.5Mn0.5(OH)2与LiNi0.5Mn0.5O2产物均为微小晶粒团聚成的颗粒。LiNi0.5Mn0.5O2材料在2.5~4.4V电位区间内,首次放电容量为130mAh/g,0.2C倍率下,50次循环后的容量保持率为87.8%。锂过量有助于形成良好的层状结构材料,并能显著提高材料的比容量和循环性能,Li1.1Ni0.5Mn0.5O2的首次放电容量为149mAh/g,0.2C倍率下,50次循环后的容量保持率为92.6%。  相似文献   

7.
采用溶胶凝胶法对尖晶石型LiMn2O4正极材料进行铝掺杂氧化锌(AZO)包覆改性,并通过XRD、SEM、EDS、TEM、EIS、ICP-AES和充放电测试等手段对其结构,形貌及电化学性能进行表征。研究结果表明,AZO包覆层有效的阻止了LiMn2O4颗粒和电解液的直接接触,抑制了高温下锰溶解,明显改善了LiMn2O4的高温循环性能。1.5wt%AZO包覆的LiMn2O4正极材料在高温(55℃)1C时,首次放电比容量为114 mAh·g-1,经过100次循环后,容量保持率仍高达95.4%,远高于未包覆LiMn2O4的70.6%。此外,1.5wt%AZO包覆的LiMn2O4表现出了优越的大倍率放电性能,在10C下放电比容量能达到99 mAh·g-1。  相似文献   

8.
采用液相沉淀法结合低温固相热解法合成了锂离子电池片状Co3O4负极.通过X射线粉体衍射(XRD)、Brunauer-Emmett-Teller(BET)比表面积分析、扫描电子显微镜(SEM)及恒电流充放电等表征手段,发现该Co3O4为立方相,结晶完整且无杂质,由直径为1.5-3.0μm、厚度约为100-300 nm的不规则片状颗粒组成,比表面积约为30.5 m2·g-1;其比容量高且容量保持率好,在0.1C倍率下,首次放电容量高达1444.5 mAh·g-1,50次循环后充电容量仍大于1100.0 mAh·g-1;但在高倍率(1C)下,50次循环后充电容量保持率仅为75.3%,倍率性能一般.故采用碳纳米管(CNTs)掺杂改性,结果表明:在1C倍率下,70次循环后复合材料充电容量保持率为96.3%;在2C倍率下,50次循环后充电容量保持率仍高达97.0%,倍率性能显著提升.  相似文献   

9.
锂钛复合氧化物锂离子电池负极材料的研究   总被引:17,自引:0,他引:17  
杨晓燕  华寿南  张树永 《电化学》2000,6(3):350-356
采用 3种化学方法合成锂钛复合氧化物 .应用X -射线衍射分析对其结构进行表征以及电化学性能测试 ,结果表明 :由Li2 CO3、TiO2 高温合成的锂钛复合氧化物为尖晶石结构的Li4Ti5 O12 .Li4Ti5 O12 电极在 1 .5V左右有一放电平台 ,充放电可逆性良好 ,即充电电压平台与此接近 ,且电极的比容量较大 ,循环性能良好 .以 0 .30mA·cm- 2 充放电时 ,首次放电容量可达 30 0mAh·g- 1,可逆比容量为 1 0 0mAh·g- 1,经多次充放电循环后 ,其结构仍保持稳定性 .试验电池测试表明 ,Li4Ti5 O12 可选作Li4Ti5 O12 /LiCoO2 锂离子电池的负极材料 .  相似文献   

10.
采用一种简便的无模板溶剂热法合成了尺寸在1μm左右、具有堆叠结构的SnO_2/TiO_2空心微球。合成过程的研究结果表明:SnO_2/TiO_2空心微球在形成过程中经历了空心、被填充、分裂到再次形成空心结构的过程。随后,SnO_2/TiO_2空心微球作为锂离子电池负极材料的电化学性能测试结果表明:SnO_2/TiO_2空心微球在0.1 A·g~(-1)的电流密度下,其首次放电容量达到1 484.9mAh·g~(-1),库伦效率为49.0%。经过600次循环后,其放电容量依然可以达到565.6 mAh·g~(-1),显示了高的容量和循环稳定性。  相似文献   

11.
氮氧化物(简称NOx,包括NO和NO2等)是形成二次有机气溶胶的重要前体物,其存在会严重影响空气质量并危害人类健康.目前用于NOx的去除的方法主要有过滤、物理吸附、热催化等.然而,这些技术存在高能耗及产生二次污染等缺点,严重制约其实际应用.近年来,光催化技术作为一种有效处理NOx的环保技术,因其具备在常温下高效处理低浓度NOx(大气污染浓度水平)的优点而获得广泛关注.最近,Bi2WO6光催化剂因其独特的层状结构以及特有的催化性质,表现出良好的可见光催化性能.Bi2WO6光催化性能与催化剂的形貌及尺寸大小密切相关,目前报道的Bi2WO6的形貌有片状、颗粒状、花状、中空微球等.其中,由小纳米颗粒堆积成的中空Bi2WO6微球因其大的比表面积和高的荷质传输速率,表现出显著优于其它形貌的光催化性能.目前已有少量关于中空结构Bi2WO6微球的制备方法的报道,这些方法均需引入纳米球状的"核"作为模板,并在其上生长Bi2WO6胶体颗粒,然后去除"核",从而得到中空结构.譬如,Shang等采用碳纳米球作为"核"制备出Bi2WO6微球,再通过煅烧手段去除碳"核".Thillai与合作者用硅球作为"核",为了得到中空结构Bi2WO6微球,用NaOH将硅"核"刻蚀.然而这类方法均涉及到复杂的制备过程和高昂的运行成本.超生喷雾热分解法是一种常见的制备尺寸可控的纳米球的方法.在之前的工作中,本研究组成功使用超声喷雾热解法制备出具有优良光催化活性的Bi2WO6实心微球.我们首次加入NaCl盐为模板,使用简单的超声喷雾热分解方法制备出具有中空结构的Bi2WO6微球光催化剂,合成过程无需采用复杂的除"核"手段.一系列表征表明:该微球由直径为41?148 nm的纳米片自组装而成,并在表面形成了不均匀分布的孔结构;并对Bi2WO6中空微球的生长机制做了详细的研究,考察了所制备Bi2WO6催化剂去除NO的效率.生长机制研究结果表明,NaCl盐在中空Bi2WO6微球的形成过程中发挥着关键性作用:(1)NaCl盐溶液在超生喷雾热分解法的高温过程中形成NaCl单晶并作为"核"模板,参与中空Bi2WO6微球的形成;(2)Na+离子有助于Bi2WO6微球的微结构-纳米片的生长;(3)Cl?离子有利于Bi2WO6微球表面微孔的形成;(4)NaCl模板水洗后留下中空结构的Bi2WO6微球;(5)NaCl盐也充当着多孔诱发剂,其水洗溢出过程会造成Bi2WO6微球表面的孔结构.性能测试表明,以NaCl盐为模板所制备的中空Bi2WO6微球表现出优异的光催化性能,其在模拟太阳光下去除NO的效率是未添加模板的1.7倍、以KCl为模板的1.5倍、以Na2SO4为模板的1.2倍.BET和DRS分析表明,中空结构Bi2WO6微球具有大的比表面积和高的可见光吸收,对提高催化性能起到重要作用.ESR测试结果表明,?OH和?O2?是中空Bi2WO6微球的光催化反应过程的主要活性物种,?O2?的产生有助于提高光催化剂降解NO的耐受性.  相似文献   

12.
In this paper, we report the preparation of γ-Fe(2)O(3) and Fe(3)O(4) magnetic hierarchically nanostructured hollow microspheres by a solvothermal combined with precursor thermal conversion method. These γ-Fe(2)O(3) and Fe(3)O(4) magnetic hierarchically nanostructured hollow microspheres were constructed by three-dimensional self-assembly of nanosheets, forming porous nanostructures. The effects of experimental parameters including molar ratio of reactants and reaction temperature on the precursors were studied. The time-dependent experiments indicated that the Ostwald ripening was responsible for the formation of the hierarchically nanostructured hollow microspheres of the precursors. γ-Fe(2)O(3) and Fe(3)O(4) magnetic hierarchically nanostructured hollow microspheres were obtained by the thermal transformation of the precursor hollow microspheres. Both γ-Fe(2)O(3) and Fe(3)O(4) hierarchically nanostructured hollow microspheres exhibited a superparamagnetic property at room temperature and had the saturation magnetization of 44.2 and 55.4emu/g, respectively, in the applied magnetic field of 20 KOe. Several kinds of organic pollutants including salicylic acid (SA), methylene blue (MB), and basic fuchsin (BF) were chosen as the model water pollutants to evaluate the removal abilities of γ-Fe(2)O(3) and Fe(3)O(4) magnetic hierarchically nanostructured hollow microspheres. It was found that γ-Fe(2)O(3) hierarchically nanostructured hollow microspheres showed a better adsorption ability over SA than MB and BF. However, Fe(3)O(4) hierarchically nanostructured hollow microspheres had the best performance for adsorbing MB.  相似文献   

13.
The conversion reactions associated with mesoporous and nanowire Co(3)O(4) when used as negative electrodes in rechargeable lithium batteries have been investigated. Initially, Li is intercalated into Co(3)O(4) up to x approximately 1.5 Li in Li(x)Co(3)O(4). Thereafter, both materials form a nanocomposite of Co particles imbedded in Li(2)O, which on subsequent charge forms CoO. The capacities on cycling increase on initial cycles to values exceeding the theoretical value for Co(3)O(4) + 8 Li(+) + 8e(-) --> 4 Li(2)O + 3 Co, 890 mAhg(-1), and this is interpreted as due to charge storage in a polymer layer that forms on the high surface area of nanowire and mesoporous Co(3)O(4). After 15 cycles, the capacity decreases drastically for the nanowires due to formation of grains that are separated one from another by a thick polymer layer, leading to electrical isolation. In contrast, the mesoporous Co(3)O(4) losses its mesoporosity and forms a morphology similar to bulk Co(3)O(4) (Co particles imbedded in Li(2)O matrix) with which it exhibits a similar capacity on cycling. In contrast to mesoporous lithium intercalation compounds, which show superior capacity at high rates compared to bulk materials, mesoporosity does not seem to improve the capacity of conversion reactions on extended cycling. If, however, mesoporosity could be retained during the conversion reaction, then higher capacities could be obtained in such systems.  相似文献   

14.
以锌盐、铁盐和聚乙烯吡咯烷酮(PVP)为原料,通过静电纺丝法先制备PVP/硝酸盐复合纤维,这些复合纤维以5℃·min-1的升温速率加热到500℃并保温3h,最终得到铁酸锌(ZnFe2O4)中空纤维.通过X射线衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)以及振动样品磁强计(VSM)等分析手段对中空纤维的晶体结构、形貌和磁学性能进行了研究.结果显示,ZnFe2O4中空纤维属于尖晶石结构,高温处理后仍能保持一维结构,纤维直径在200-400nm之间,纤维壁由大小为25nm的颗粒堆积而成.室温磁化结果显示制备的ZnFe2O4中空纤维具有超顺磁性,在10kOe的磁化强度为2.03emu·g-1.  相似文献   

15.
Hollow SnO2 microspheres are prepared from resorcinol–formaldehyde gel and different tin compound precursors, including stannous sulfate (SnSO4), stannous chloride dihydrate (SnCl2·2H2O), and stannic chloride pentahydrate (SnCl4·5H2O) via chemically induced self-assembly in hydrothermal environment. Morphological and structural characterizations of as-prepared hollow SnO2 microspheres are carried out using scanning electron microscopy, X-ray diffraction, and nitrogen adsorption–desorption method. Their electrochemical properties as the supercapacitor electrode materials for application are also investigated using cyclic voltammetry (CV) and galvanostatic charge–discharge (GCD) measurement in 1 M H2SO4 electrolyte. There are redox peaks in CV curves and a large number of Faradic plateaus in GCD curves. At different scan rates, all the obtained samples have excellent electrochemical properties. The hollow SnO2 microspheres obtained from SnSO4 and SnCl2·2H2O as precursors show relatively lower specific capacitances of 395 and 347 F g?1, respectively. However, the specific capacitance of SnO2 from SnCl4·5H2O is up to 663 F g?1. The high specific surface area and hollow structure of SnO2 microspheres are due to facilitating the rapid transport of electrolyte ions and improving the electrochemical performance. It is expected that hollow SnO2 microspheres are the promising redox supercapacitor materials.  相似文献   

16.
Advanced integrated gasification combined cycle (IGCC) power generation systems require the development of high-temperature,regenerable,desulfurization sorbents capable of removing hydrogen sulfide from coal gasifier gas to very low levels.As a sort of effective desufurizer,such as Fe2O3,ZnO and ZnFe2O4,it will endure strong reducing atmosphere in desulfurization process.The reduced degree of desufurizer can have an effect on its desulfurization reactivity.In this paper,Fe2O3,ZnO and ZnFe2O4 were synthesized by precipitation or co-precipitation at constant pH.After aging,washing and drying,the solids were calcined at 800℃.The reduction behaviors of sample were characterized by temperature-programmed reduction (TPR).It is found that there are two reduction peaks for Fe203 in TPR,and whereas no reduction peaks for ZnO are found.The reduction process of ZnFe2O4 prepared by co-precipitation is different from that of Fe2O3.ZnFe2O4 is easier to be reduced than Fe2O3.The activation energy of reduction process for Fe2O3 and ZnFe2O4 is obtained at different reduction periods.  相似文献   

17.
Novel cage-like and electromagnetic functional polyaniline (PANI)/CoFe2O4 composite nanostructures, in which the self-assembled PANI nanofibers (approximately 15 nm in diameter) entwined around the octahedral CoFe2O4 magnet acting as the nucleation site or template, were successfully prepared by FeCl3 as either oxidant and dopant via a self-assembly process. The coordination effect of the magnet as a nucleation site or template and the magnetic interaction between the PANI nanofibers and CoFe2O4 as a driving force results in such cage-like nanostructures. The cage-like composite nanostructures not only have high conductivity (sigmamax approximately 5.2 S/cm), but also show a typical ferromagnetic behavior.  相似文献   

18.
张彬  张一波  杨向光 《应用化学》2014,31(12):1447-1452
以水滑石为前驱体合成微米花/纳米片多级结构过渡金属复合氧化物CoFe2O4,一种高性能锂离子电池负极材料。 通过X射线衍射仪(XRD)、扫描电子显微镜(SEM)和透射电子显微镜(TEM)等技术手段对其进行结构表征,发现得到的复合氧化物为单一晶相,且具有多级结构。 电化学性能测试表明,得到的负极材料具有高比容量和倍率性能。 通过还原氧化石墨烯(rGO)对CoFe2O4进行表面包覆制备CoFe2O4/rGO,其循环稳定性得到大幅度提高。  相似文献   

19.
"The composites of hollow glass microspheres coated with NiFe2O4 nanoparticles were prepared using polyacrylamide gel method. The structural characteristics, morphology and electromagnetic properties of the composite powders with different weight percent of glass microspheres (15%, 40%, and 65%) were obtained by X-ray diffraction, scanning electron microscope, infrared spectroscopy and HP8510 network analyzer. The results indicated that the phase structure of composite powders was the mixtures of nickel ferrite, quartz, and mullite. The peak intensity for nickel ferrite decreased rapidly and for mullite increased remarkably with the increasing amount of microspheres. A pure spinel structure of NiFe2O4 formed on the glass microspheres at 600 oC. A uniform and continuous NiFe2O4-coating was obtained when the content of microspheres was 40%. A great amount of NiFe2O4 particle size is less than 80 nm. The composite with a content of 40% microspheres exhibits better dielectric and magnetic loss properties which are useful to absorb more electromagnetic wave. It can be a kind of good and light electromagnetic wave absorbing material in the X-band."  相似文献   

20.
铁酸锌掺杂对二氧化钛结构相变及光催化性能的影响   总被引:15,自引:0,他引:15  
分别采用共沉淀法和溶胶-凝胶法制备铁酸锌和二氧化钛纳米粉体,较系统地研究了铁酸锌纳米掺杂对二氧化钛“锐钛矿→金红石”的结构相变及光催化性能的影响.结果表明,适量铁酸锌的掺杂可促进二氧化钛的结构相变,显著提高其光催化活性,在最佳掺杂浓度时,其光催化降解苯酚的效率可以提高2~3倍.  相似文献   

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