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1.
采用共沉淀法和成LiNi0.8Co0.2O2,探讨影响锂离子电池正极材料LiNi0.8Co0.2O2电化学性能及结构的因素.为了提高材料的电化学性能,对材料进行了掺杂改性的研究,分别掺入Al、Mn、Mg和Fe四种元素.通过在2.8~4.2V范围内的充放电测试分析,掺入Mn的正极材料LiNi0.8Co0.1Mn0.1O2具有最高的放电比容量以及最低的容量损失,其首次放电容量为168.84 mAh/g,十次循环后的放电容量为166.9 mAh/g.  相似文献   

2.
采用草酸共沉淀法合成了锂离子正极材料LiNi0.4Mn0.4Co0.2O2。用XRD、SEM和充放电实验对合成产物的结构、形貌和电化学性能进行了表征;用DSC对合成产物在不同充电状态下的热稳定性进行了研究。结果表明,采用草酸共沉淀法合成的正极材料LiNi0.4Mn0.4Co0.2O2具有α-NaFeO2型层状结构,阳离子有序度高,粒度均匀适中,电化学性能良好,首次放电比容量达到158.7 mAh/g,30次循环后放电比容量还有144.8 mAh/g;过充电状态下具有良好的热稳定性。  相似文献   

3.
以LiNi1/3Co1/3Mn1/3O2为正极材料,采用共沉淀合成方法制备LaF3表面修饰LiNi1/3Co1/3Mn1/3O2正极材料,利用X射线衍射(XRD)、扫描电镜(SEM)和电化学测试等方法对合成材料的结构、形貌以及电化学性能进行表征。结果表明:经过LaF3表面修饰的LiNi1/3Co1/3Mn1/3O2材料保持了LiNi1/3Co1/3Mn1/3O2层状结构,其中LaF3表面修饰量为0.59%时,在电压为2.75~4.50V范围内,以0.3mA/cm2电流密度下经恒电流充放电测试,其首次放电比容量为172.7mAh/g,经过50周充放电循环后放电比容量为163.5mAh/g,表现出较高的初始放电比容量和良好的抗过充电性能。  相似文献   

4.
在共沉淀法合成Ni0.4Co0.2Mn0.4(OH)2的基础上制备了锂离子电池正极材料LiNi0.4Co0.2Mn0.4O2.通过XRD,SEM和电化学测试对不同反应温度下LiNi0.4Co0.2Mn0.4O2正极材料的结构、形貌及电化学性能进行了测试和表征.测试表明随着反应温度的提高,c/a和I(003)/I(104)值也在增加,表明温度的升高可以减少锂镍离子的混排,使层状结构更加完整,进而电化学性能也更优异.900℃下反应所得到的样品,以0.2C放电,其首次放电容量为148.3mAh/g,库伦效率最高可达9.8%.循环40个周期后容量保持率为93.9%,具有较好的电化学性能.  相似文献   

5.
采用镍锰氢氧化物和碳酸锂为原料,在高温下合成LiNi0.5Mn1.5O4正极材料。系统地研究了不同的退火工艺对LiNi0.5Mn1.5O4结构与电化学性能的影响。研究发现,合成的样品都具有标准的尖晶石结构和规则的八面体外形。电化学测试结果表明,在700℃下退火12h得到的样品电化学性能最佳。首次放电容量达到141mAh/g,40次循环后容量保持率为99.2%,5C放电时容量仍然达到122mAh/g。  相似文献   

6.
采用X射线衍射仪、电池测试系统等,研究了采用Pechini法合成的锂离子电池正极材料LiCexNdxMn2-2xO4(x=0、0.012、0.014、0.016、0.018)的组织结构、首次充放电性能、循环稳定性能等。结果表明:当稀土元素掺入量较少(x≤0.014)时,样品由尖晶石型LiMn2O4相组成,否则,样品中将出现微量的杂质相(CeO2、Nd2O3);适量的稀土元素掺杂将使LiMn2O4样品的初始容量减小、循环稳定性能增加。LiCe0.014Nd0.014Mn1.972O4样品具有较好的循环稳定性能,其初始放电容量为124.8 mAh/g,经30次循环充放电后的容量保持在116.3 mAh/g,容量保持率为93.2%。  相似文献   

7.
以LiNi1/3CO1/3Mn1/302为正极材料,采用共沉淀合成方法制备LaF3表面修饰LiNimCo1/3Mnm02正极材料,利用X射线衍射(XRD)、扫描电镜(SEM)和电化学测试等方法对合成材料的结构、形貌以及电化学性能进行表征。结果表明:经过LaF3表面修饰的LiNi1/3C01/3Mn1/302材料保持了LiNi1/3Co1/3Mn1/302层状结构,其中LaFs表面修饰量为0.59%时,在电压为2.75-4.50V范围内,以0.3mA/cm。电流密度下经恒电流充放电测试,其首次放电比容量为172.7mAh/g,经过50周充放电循环后放电比容量为163.5mAh/g,表现出较高的初始放电比容量和良好的抗过充电性能。  相似文献   

8.
以LiOH·H2O、MnSO4·H2O和NiSO4·6H2O等为原料,采用水热法合成尖晶石LiNi0.5Mn1.5O4材料.利用扫描电子显微镜、粉末X-射线衍射仪、电化学测试分别对材料形貌、结构和电化学性能进行表征.研究加入不同锂量和热处理对尖晶石LiNi0.5Mn1.5O4材料的初始容量、放电平台以及循环性能的影响.结果表明:经过850℃热处理所合成的材料分布均匀、结晶和电化学性能良好.当LiOH溶液为0.162 g·mL-1时,尖晶石LiNi0.5Mn1.5O4材料在1 C倍率电流(140 mAh g-1)条件下,首次放电比容量为111.0 mAh·g-1.且该样品的循环性能优越:经150充放电循环后的容量衰减率仅为4.5%.  相似文献   

9.
采用X射线衍射仪、电池测试系统等,研究了采用Pechini法合成的锂离子电池正极材料LiCexNdxMn2-2xO4(x=0、0.012、0.014、0.016、0.018)的组织结构、首次充放电性能、循环稳定性能等。结果表明:当稀土元素掺入量较少(x≤0.014)时,样品由尖晶石型LiMn2O4相组成,否则,样品中将出现微量的杂质相(CeO2、Nd2O3);适量的稀土元素掺杂将使LiMn2O4样品的初始容量减小、循环稳定性能增加。LiCe0.014Nd0.014Mn1.972O4样品具有较好的循环稳定性能,其初始放电容量为124.8 mAh/g,经30次循环充放电后的容量保持在116.3 mAh/g,容量保持率为93.2%。  相似文献   

10.
以LiNO3、Al(NO3)3.9H2O、Co(NO3)2.6H2O和球形Ni(OH)2为原料,采用熔盐包裹法在空气中合成了LiNi0.8-xCo0.2AlxO2.采用XRD、SEM和电池性能测试仪研究了合成产物的结构、形貌和电化学性能.考察了合成温度、合成时间、掺铝量和锂过量对合成产物结构的影响.实验表明,采用熔盐包裹法在空气中合成的LiNi0.8-xCo0.2AlxO2具有α-NaFeO2型层状有序结构和球状形貌,并具有良好的电化学性能,其中LiNi0.7Co0.2Al0.1O2的最大放电比容量达到157.7 mAh/g.在空气中合成LiNi0.8-xCo0.2AlxO2的最佳工艺条件为合成温度750℃,合成时间16 h,锂过量10%(摩尔分数).  相似文献   

11.
锂离子电池正极材料LiNi0.8Co0.2O2的合成及性能研究   总被引:1,自引:0,他引:1  
以硝酸盐和淀粉为原料,采用溶胶-凝胶方法合成LiNi0.8Co0.2O2锂离子电池正极材料,利用X射线衍射(XRD)、扫描电镜(SEM)和电化学测试等方法对合成材料的结构、形貌以及电化学性能进行表征。结果表明,合成材料为单一晶相的α-NaFeO2型层状结构,颗粒小且分布均匀,在电压为2.75~4.50 V (vs. Li+/Li) 范围内,以0.2 mA/cm2电流密度下经恒电流充放电测试,其首次放电比容量为183.1 mAh/g,经过50周充放电循环后放电比容量为171.3 mAh/g,表现出较大的初始放电比容量和良好的循环性能。  相似文献   

12.
LiNi0.78 Co0.2 Al0.02O2 cathode materials were prepared with a novel co-precipitation method followed by heat-treating. The properties of the materials were characterized. XRD patterns showed that no secondary phase appeared and the hexagonal lattice parameter c of LiNi0.rsCoo.2AI~0202 was larger than that of LiNi0.8Co0.2O2. The SEM images indicated that the powders of the material were submicron size. The results of the ICP-AES analysis proved that elemental compositions of the material were similar to those of the targeted one. Cyclic voltammetry (3.0- 4. 2 V) illustrated that the new material had good lithium-ion intercalation/de-intercalation performance. The results of galvanostatic cycling showed that the initial specific discharge capacity of the prepared material was 181.4 mAh/g, and the specific discharge capacity was 177.3 mAh/g after 100 cycles (0. 2C, 3.0 - 4. 2 V, vs. Li^+/Li) with the capacity retention ratio of 97.7%.  相似文献   

13.
LiNi0.78Co2Al0.02O2 cathode materials were prepared with a novel co-precipitation method followed by heat-treating. The properties of the materials were characterized. XRD patterns showed that no secondary phase appeared and the hexagonal lattice parameter c of LiNi0.78Co2Al0.02O2 was larger than that of LiNi0.8Co0.2O2. The SEM images indicated that the powders of the material were submicron size. The results of the ICP-AES analysis proved that elemental compositions of the material were similar to those of the targeted one. Cyclic voltammetry (3.0-4.2 V) illustrated that the new material had good lithium-ion intercalation/de-intercalation performance. The results of galvanostatic cycling showed that the initial specific discharge capacity of the prepared ma-terial was 181.4 mAh/g, and the specific discharge capacity was 177.3 mAh/g after 100 cycles (0.2C,3.0-4.2 V, vs. Li /Li) with the capacity retention ratio of 97.7%.  相似文献   

14.
The commercialized lithium secondary cells need the electrode materials with high speeific capacity, lower pollution and lower price. Certain industrial materials ( NiSO_4, CoSO_4 , LiOH·H_2O)were used to synthesize Ni_(0.8)Co_(0.2)(OH)_2 of a stratified structure, when various synthesis conditions such as pH, reaction temperature et al. were controlled strictly. After LiOH·H_2O and Ni_(0.8)Co_(0.2) (OH)_2were calcinated in air atmosphere, LiNi_(0.8)Co_(0.2)O_2 positive electrode materials with good layered crystal structure was obtained. Tests showed that the optimal calcination temperature in air atmosphere was about at 720℃ and LiNi_(0.8)Co_(0.2)O_2 synthesized in the above conditions had good electrochemical properties and a low cost. The first specific: discharge capacity of the material was 186 mAh/g, and the specific discharge capacity was 175 mAh/g after 50 cycles at a 0.2C rate, between 3.0~4.2 V with a discharge deterioration ratio of 0.22% each cycle. Tests showed that LiNi_(0.8)Co_(0.2)O  相似文献   

15.
With citric acid as a polymeric agent layered LiNi0.8Co0.2O2 materials were synthesized by a spray pyrolysis method. The LiNi0.sCo0.2O2 particles were characterized by means of XRD, SEM and TEM. The electrochemical performances of LiNi0.8Co0.2O2 particles were studied in a voltage window of 3.00-4.35 V and at a current density of 30 mA/g. The results show that in the pilot-scale spray pyrolysis process, the morphology of particles is dependent upon the precursor concentration and flux of carrier gas. The initial discharge capacity of the LiNi0.8Co0.2O2particles at 720 ℃ for 12 h is 187.3 mA.h/g, and the capacity remains 96.8% with excellent cycleability after 30 cycles. The LiNi0.8Co0.2O2 samples synthesized under the optimized conditions by the spray pyrolysis method shows a good electrochemical performance.  相似文献   

16.
尖晶石型锰酸锂制备及其电化学性能   总被引:4,自引:0,他引:4  
锰酸锂被认为是取代商品锂离子电池正极材料的LiCoO2候选材料.以二氧化锰、醋酸锰及氢氧化锂为原料,蒸馏水为分散剂,在空气气氛下进行分段烧结,控制烧结温度和时间,制备了锂离子电池正极材料锰酸锂.用X射线衍射仪,电子扫描电镜对产物的结构特征、微观表面形貌和恒流充放电性能进行了表征.结果表明:所制得正极材料为尖晶石型锰酸锂,结晶度高,无杂质相,材料颗粒的粒径均匀,首次放电比容量为117.3 mAh/g(0.5 mA/cm2,2.8~4.4 V,vs.Li+/Li);50次循环后,放电比容量为107.9 mAh/g,不可逆容量损失为9.4 mAh/g,比容量保持率为92.0%.得到了很好的综合电化学性能.  相似文献   

17.
The comparative study of LiNi0.8Co0.2O2 and LiNi0.75Al0.25O2 was carried out by X-ray diffraction(XRD) and electrochemical methods.The results show that Co and Al doping suppress the phase transition during charge-discharge.The experiments indicate that LiNi0.75Al0.25O2 has the better cycle-ability and over-charge resistance comparing with LiNi0.8Co0.2O2,The interfacial behavior was studied by use of electrochemical impedance spectroscopy(EIS).The results show that LiNi0.75Al0.25O2 has a slightly larger polarization character than LiNi0.8Co0.2O2.  相似文献   

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