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1.
以化学共沉淀法制备的球形Ni0.25Mn0.75CO3为前驱体合成高电压正极材料LiNi0.5Mn1.5O4,探讨用前驱体与Li2CO3直接反应和用前驱体分解后的氧化物与Li2CO3反应两种工艺路线对LiNi0.5Mn1.5O4形貌和电化学性能的影响。用扫描电镜(SEM)和X射线衍射(XRD)对Ni0.25Mn0.75CO3前驱体和LiNi0.5Mn1.5O4样品进行表征,用充放电测试和循环伏安法对LiNi0.5Mn1.5O4样品进行电化学性能研究。结果表明:两种方法合成的LiNi0.5Mn1.5O4均具有尖晶石型结构。但以前驱体Ni0.25Mn0.75CO3直接与Li2CO3反应合成的LiNi0.5Mn1.5O4的一次粒子颗粒较大,形貌较差,性能也较差;而以前驱体分解后的氧化物与Li2CO3反应合成的LiNi0.5Mn1.5O4的形貌及性能均较好。在3.0~4.9 V的电压范围内,1C倍率下电池的放电比容量达到136.3 mA.h/g,循环100次仍有126.5 mA.h/g,且材料具有较好的倍率性能;5C倍率下的首次放电比容量高达120.7 mA.h/g。  相似文献   

2.
采用氢氧化物共沉淀法合成前驱体Ni0.5Cc0.2Mn0.3H(OH)2,进一步用高温固相法与锂源共混煅烧得到LiNi0.5Co0.2Mn0.3O2。初步探讨了前驱体与锂源在高温煅烧过程中的质量变化及煅烧工艺对材料结构和性能的影响。热重分析(TGA)表明在煅烧过程中750℃后材料质量几乎没有变化。X射线衍射(XRD)对750℃-900℃的材料进行结构分析,结果表明所有材料具有良好的α-NaFeO2层状结构和较小的阳离子混排度。扫描电镜(SEM)分析表明材料具有表面光滑,分布均匀的球形结构。横流充放电测试结果表明在850℃煅烧的材料具有最好的电学性能,在0.2C,2.5-4.6V测试条件下,其具有193.7mAh/g的首次放电容量,循环30次后的容量保持率为94.2%,并且具有最好的倍率性能。  相似文献   

3.
为改善LiNi_(0.5)Mn_(1.5)O_4的倍率性能和循环性能,采用二步固相法制备了F-掺杂的LiNi_(0.5)Mn_(1.5)O_(4-x)F_x(x=0,0.05,0.1,015,0.2)正极材料,讨论了不同F掺杂量对材料性能的影响。X射线衍射、扫描电镜结果表明,掺杂和未掺杂的正极材料都为单一的尖晶石结构,粒度分布均匀。充放电测试、循环伏安和交流阻抗测试结果表明:当F的掺杂量为x=0.1时(LiNi_(0.5)Mn_(1.5)O_(3.9)F_(0.1))正极材料的性能最好,0.1,0.5,1,2及5C倍率的首次放电比容量依次为129.07,123.59,118.49,114.49和92.57 mAh/g。1C倍率下循环30次,容量保持率仍为98.84%。  相似文献   

4.
以Ag、Sn、La2O3粉为原料,采用机械合金法制备复合粉体。结合氧化法与粉末冶金工艺,对复合粉体进行氧化、压制、烧结。采用扫描电镜(SEM)和能谱仪、硬度计、金相显微镜、金属电导率测量仪等对复合粉体氧化前后的形貌以及电接触材料烧结前后的性能进行表征。结果表明:烧结后,电接触材料硬度较于烧结前明显下降。同时电接触材料随Sn含量增大,电阻率升高,密度反而下降。在一定的La2O3(0wt.%、0.75wt.%、1.5wt.%、2.25wt.%、3wt.%)含量范围内,La2O3掺杂量越高,密度越低。同时电接触材料经烧结后,随La2O3含量增加,其电阻率先降后升,在La2O3含量为0.75wt.%时,电接触材料的电阻率最低。  相似文献   

5.
摘 要: 在含有不同浓度纳米Cr2O3微粒的硅酸盐体系电解液中对2024-T4铝合金进行微弧氧化处理,使用SEM观察陶瓷膜的表面形貌和截面形貌,使用EDS能谱仪分析膜层中各主要成分沿截面方向的分布,使用XRD分析陶瓷膜的相结构,使用纳米压痕硬度计测量陶瓷膜的硬度,使用粗糙度仪测量陶瓷膜的表面粗糙度,使用摩擦磨损试验机测量陶瓷膜的摩擦系数,使用激光共聚焦显微镜测量磨痕体积,评估磨损率,使用SEM观察磨痕形貌,结果表明:在电解液中加入纳米Cr2O3微粒后,制备的陶瓷膜中出现了Cr2O3相,电解液中纳米Cr2O3微粒浓度达到2.4g/L时,陶瓷膜的硬度最高,摩擦系数最小,磨损率最低,耐磨性最好。  相似文献   

6.
通过丝网印刷方法,在由LiNi1/3Co1/3Mn1/3O2、导电添加剂和聚偏氟乙烯制成的电极表面涂覆了一层薄薄的氧化石墨烯。在充电截止电压为4.3 V的条件下进行了循环性能和倍率性能测试。结果表明:未改性电极在恒电流充放电测试中容量下降且极化增加,而包覆改性后电极的容量衰减程度和极化增加速度降低。这是由于氧化石墨烯涂层抑制了LiNi1/3Co1/3Mn1/3O2电极和电解质之间的部分副反应,使得改性电极的循环稳定性和倍率性能显著提高,为提升LiNi1/3Co1/3Mn1/3O2电极性能提供了一种环境友好且非常有效的方法。  相似文献   

7.
利用高温固相法制备了蓝色长余辉材料β-Ga2O3: B3+. β-Ga2O3: B3+在 260 nm紫外光辐照5分钟后,撤去紫外光,在380-600nm光谱范围内呈现宽带的蓝色余辉,余辉时间超过0.5小时。通过激发光谱,发射光谱,余辉衰减曲线,热释光谱等实验手段对样品进行表征。实验结果表明,B3+的掺入能够提高β-Ga2O3的发光性质。β-Ga2O3: 80% B3+的热释光谱表明B3+的掺入能够增加陷阱数目及陷阱深度。  相似文献   

8.
以仲丁醇铝为前驱体,采用溶胶-凝胶法结合丙酮-苯胺原位生成水技术,通过乙醇超临界干燥,制备出不同含量(1.5 mol%~12 mol%)La2O3掺杂的氧化铝气凝胶。采用电子扫描电镜(SEM)、透射电子显微镜(TEM)、X线衍射仪(XRD)、N2吸附分析仪等仪器表征了La2O3掺杂对氧化铝气凝胶的微结构和耐温性能的影响。结果表明:La2O3的引入使氧化铝气凝胶的形貌由球状颗粒向大的片状结构转变。适量的La2O3掺杂能提高氧化铝气凝胶的比表面积,9 mol% La2O3掺杂的氧化铝气凝胶比表面积最大。通过La2O3掺杂,能够抑制氧化铝晶粒在高温下的生长和α-Al2O3的相变,提高氧化铝气凝胶的耐温性能。1200℃热处理后,La2O3掺杂的氧化铝气凝胶仍维持在θ-Al2O3,比表面积为86.5 m2/g,高于未掺杂的氧化铝气凝胶(46 m2/g)。  相似文献   

9.
采用流变相法合成得到Li_(1.2+x)Ni_(0.1)Co_(0.2)Mn_(0.05)O_2(x=0, 0.036, 0.060, 0.096),探讨过锂量对结构和电化学性能的影响。X射线衍射(XRD)对样品进行结构分析证明所有样品具有典型的α-NaFeO_2结构和较小的阳离子混排度。扫描电镜(SEM)对样品进行表征证明不同过锂量的材料,颗粒相对均匀,表面光滑。电化学性能测试结果表明:最佳过锂量为x=0.036时,正极材料Li_(1.236)Ni_(0.1)Co_(0.2)Mn_(0.5)O_2在0.05C、2~4.8V测试条件下进行电化学性能测试,25和55℃下该材料初始放电容量分别为215.3和297.1 mAh·g-1,首次库伦效率分别为66.6%和84.6%,0.2 C下循环50次后容量保持率分别为89.0%和87.8%,且x=0.036时该材料具有最佳的倍率性能。  相似文献   

10.
钨酸铋(Bi2WO6),结构最简单的Aurivillius相化合物,是近期受到研究者关注的新型光催化材料。然而,光催化剂粉末在反应介质中难被回收,工业化应用成本较高。本文用三步方法合成了可回收的Fe3O4/SiO2/Bi2WO6磁性复合光催化剂,通过溶剂热法合成具有磁性的Fe3O4,用溶胶凝胶法在Fe3O4表面覆盖SiO2层,后将磁性颗粒与Bi2WO6纳米片相结合。光催化剂的形貌结构及性能通过XRD、SEM、PL、UV-vis进行表征测试。结果表明,直径约500 nm的Fe3O4微球附着在边长约500 nm的Bi2WO6纳米片的表面,SiO2在两者之间起到了粘连作用。光催化剂Fe3O4/SiO2/Bi2WO6对于罗丹明B的光降解活性较好,且有一定磁性,可以通过外加磁场将其从溶液中分离,有较大的应用潜力。  相似文献   

11.
The core-shell structure cathode material Li(Ni0.8Co0.15Al0.05)0.8(Ni0.5Mn0.5)0.2O2 (LNCANMO) was synthesized via a co-precipitation method. Its applicability as a cathode material for lithium ion batteries was investigated. The core-shell particle consists of LiNi0.8Co0.15Al0.05O2 (LNCAO) as the core and a LiNi0.5Mn0.5O2 as the shell. The thickness of the LiNi0.5Mn0.5O2 layer is approximately 1.25 μm, as estimated by field emission scanning electron microscopy (FE-SEM). The cycling behavior between 2.8 and 4.3 V at a current rate of 18 mA g−1 shows a reversible capacity of about 195 mAh g−1 with little capacity loss after 50 cycles. High-rate capability testing shows that even at a rate of 5 C, a stable capacity of approximately 127 mAh g−1 is retained. In contrast, the capacity of LNCAO rapidly decreases in cyclic and high rate tests. The observed higher current rate capability and cycle stability of LNCANMO can be attributed to the lower impedance including charge transfer resistance and surface film resistance. Differential scanning calorimetry (DSC) indicates that LNCANMO had a much improved oxygen evolution onset temperature of approximately 251 °C, and a much lower level of exothermic-heat release compared to LNCAO. The improved thermal stability of the LNCANMO can be ascribed to the thermally stable outer shell of LiNi0.5Mn0.5O2, which suppresses oxygen release from the host lattice and not directly come into contact with the electrolyte solution. In particular, LNCANMO is shown to exhibit improved electrochemical performance and is a safe material for use as an electrode for lithium ion batteries.  相似文献   

12.
The formation of impurity LixNi1−xO when synthesizing spinel LiNi0.5Mn1.5O4 using solid state reaction method, and its influence on the electrochemical properties of product LiNi0.5Mn1.5O4 were studied. The secondary phase LixNi1−xO emerges at high temperature due to oxygen deficiency for LiNi0.5Mn1.5O4 and partial reduction of Mn4+ to Mn3+ in LiNi0.5Mn1.5O4. Annealing process can diminish oxygen deficiency and inhibit impurity LixNi1−xO. The impurity reduces the specific capacity of product, but it does not have obvious negative effect on cycle performance of product. The capacity of LiNi0.5Mn1.5O4 that contains LixNi1−xO can deliver about 120 mAh g−1.  相似文献   

13.
以Al(NO3)3?9H2O为包覆原料,通过燃烧法制备得到LiNi0.03Co0.05Mn1.92O4@Al2O3正极材料。通过X射线衍射(XRD),场发射扫描电子显微镜(FESEM)和透射电镜(TEM)等表征手段对材料的结构和形貌进行分析,并通过恒电流充放电、循环伏安(CV)、交流阻抗(EIS)等测试分析材料的电化学性能。结果表明,Al2O3包覆没有改变LiNi0.03Co0.05Mn1.92O4的尖晶石型结构,包覆层厚度约10.6nm。LiNi0.03Co0.05Mn1.92O4@Al2O3正极材料电化学性能得到了明显改善,1 C和10 C倍率下初始放电比容量分别为119.9 mAh?g-1和106.3 mAh?g-1,充放电循环500次后容量保持率分别为88.4%和78.2%,而未包覆的LiNi0.03Co0.05Mn1.92O4在1 C和10 C倍率下初始放电比容量分别为121.2 mAh?g-1和104.0 mAh?g-1,500次循环后容量保持率分别为84.1%和67.6%。LiNi0.03Co0.05Mn1.92O4@Al2O3活化能为32.92 kJ?mol-1,而未包覆材料的活化能为36.24 kJ?mol-1,包覆有效降低了材料Li+扩散所需克服的能垒,提高了材料的电化学性能。  相似文献   

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16.
Al2O3-Ce0.5Zr0.5O2 catalytic powders were synthesized by the coprecipitation (ACZ-C) and mechanical mixing (ACZ-M) methods, respectively. As-synthesized powders were characterized by XRD, Raman spectroscopy, surface area and thermogravimetric analyses. It was found that the mixing extent of Al3+ ions affected the phase development, texture and oxygen storage capacity (OSC) of the Ce0.5Zr0.5O2 powder. Single phase of ACZ-C could be maintained without phase separation and inhibit α-Al2O3 formation up to 1200 °C. The specific surface area value of ACZ-C (81.5 m2/g) was larger than that of ACZ-M (62.1 m2/g) and Ce0.5Zr0.5O2 (17.1 m2/g) powders, which were calcined at 1000 °C. In comparison with ACZ-C and Al2O3, which were calcined at high temperature (900–1200 °C), it was found that the degradation rate of specific surface area of ACZ-C was lower than that of Al2O3. ACZ-C sample showed a higher thermal stability to resist phase separation and crystallite growth, which enhanced the oxygen storage capacity property for Ce0.5Zr0.5O2 powders.  相似文献   

17.
Orthorhombic structure FeF3 was synthesized by a liquid-phase method using FeCl3, NaOH and HF solution as starting materials, and the FeF3/V2O5 composites were prepared by milling the mixture of as-prepared FeF3 and the conductive V2O5 powder. The properties of FeF3/V2O5 composites were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), galvanostatic charge/discharge and cyclic voltammetry measurements. Results showed that the FeF3/V2O5 composites can be used as cathode material for lithium-ion battery. Electrochemical measurements in a voltage range of 2.0–4.5 V reveal that the addition of conductive V2O5 improves significantly the electrochemical performance of FeF3, and the FeF3/V2O5 composite prepared by milling for 3 h exhibits high discharge capacity and good cycle performance, and its discharge capacity maintains about 209 mAh g−1 at 0.1 C (23.7 mA g−1) after 30 cycles.  相似文献   

18.
首先以AlO2-为铝源,采用三元共沉淀法制备前驱体Ni_(0.8)Co_(0.15)Al_(0.05)(OH)_2。对前驱体进行500℃高温处理,随后与过量的锂盐混合均匀,在氧气气氛下700℃煅烧12 h制得LiNi_(0.8)Co_(0.15)Al_(0.05)O_2(NCA)材料。采用X射线衍射仪(XRD)测试可知,所得的NCA材料呈典型的α-NaFeO_2层状结构,属于R-3m空间群。扫描电子显微镜(SEM)测试显示,NCA为粒径5~6μm的球状颗粒。材料在电流倍率为0.1C下首次放电容量为167.1mAh/g,循环200次以后容量保持率为96.2%。倍率测试表明,0.1、10 C下NCA的容量分别为184.0、112.7 mAh/g,到恢复到0.1 C时,容量仍可达179.7mAh/g,具有比较好的倍率性能。  相似文献   

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