Different LiNi0.8Co0.15Al0.05O2 cathode materials were washed by ethanol solvent. Inductively coupled plasma atomic emission spectroscopy(ICP-AES), Fourier transformed infrared(FTIR) spectrum, X-ray diffraction(...Different LiNi0.8Co0.15Al0.05O2 cathode materials were washed by ethanol solvent. Inductively coupled plasma atomic emission spectroscopy(ICP-AES), Fourier transformed infrared(FTIR) spectrum, X-ray diffraction(XRD), scanning electron microscopy(SEM), charge-discharge test and electrochemical impedance spectroscopy(EIS) were used to evaluate the elemental contents, structures, morphologies and electrochemical properties of samples. The results show that ethanol washing can remove effectively the synthetic residues LiOH/Li2 O on the freshly-prepared LiNi0.8Co0.15Al0.05O2 and make the sample much more resistant to H2O and CO2, without destroying its bulk structure, surface morphology and electrochemical performances. Moreover, the discharge specific capacity and cycle performance of LiNi0.8Co0.15Al0.05O2 after storage in air with a relative humidity of 80% for three months are improved by immediate ethanol washing.展开更多
The co-precipitation derived LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 cathode material was modified by a coating layer of TiP_2O_7 through an ethanol-based process. The TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 is charac...The co-precipitation derived LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 cathode material was modified by a coating layer of TiP_2O_7 through an ethanol-based process. The TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 is characterized by Xray diffraction analysis, scanning electron microscopy and transmission electron microscopy to investigate the microstructure and morphology. The differential scanning calorimetry was employed to confirm the improved thermal stability. The electrochemical properties were evaluated by the constant-current charge/discharge tests. The TiP_2O_7 coating layer is effectively suppressing the structural degradation and ameliorating the surface status of LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 particles, and the intrinsic rhombohedral layered structure of TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 was well maintained during the long-term cycling process, while the surface structure of pristine LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 was degraded from rhombohedral R3 m layered structure to cubic rock-salt structure. The charged state Ni^(4+) ions will easily transform into Ni^(2+) when the electrolytes oxidized at the interface of cathode/electrolytes and formed the cubic rock-salt NiO type structure, and the cubic rock-salt structure without electrochemical activity on the surface of LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 particles will finally accelerate capacity fading. The thermal stability and cyclic performances of the LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 electrode were remarkably improved by TiP_2O_7 coating, the total amount of heat release corresponding to the intensity of thermal runaway were 1075.5 and 964.6 J/g for pristine LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 and TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 respectively, the pouch shaped full cells that employed TiP 2 O7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 as cathode were able to perform more than 2200 cycles at 25 ℃ and more than 1000 cycles at 45 ℃ before the capacity retention fading to 80%.展开更多
采用两步干混-球磨方法制备了石墨烯掺杂改性的锂离子电池LiFePO_4/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2复合正极材料,实现LiNi_(0.8)Co_(0.15)Al_(0.05)O_2材料的高容量和高安全性。借助X射线衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)、X...采用两步干混-球磨方法制备了石墨烯掺杂改性的锂离子电池LiFePO_4/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2复合正极材料,实现LiNi_(0.8)Co_(0.15)Al_(0.05)O_2材料的高容量和高安全性。借助X射线衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)、X射线光电子能谱(XPS)以及电化学测试等表征手段对材料的晶体结构、微观形貌和电化学性能进行了较系统的研究。结果表明,石墨烯的存在实现了Li Fe PO4材料在LiNi_(0.8)Co_(0.15)Al_(0.05)O_2材料表面的完全包覆,形成致密的包覆层,进一步抑制LiNi_(0.8)Co_(0.15)Al_(0.05)O_2与电解液之间的副反应,提高活性材料利用率和循环性能。三者之间构成导电网络,加快电子渗透和传输,提高倍率性能。Li Fe PO4质量分数为20%的Li Fe PO4-Graphene/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2样品具有最佳的容量性能和长循环性能,0.1C时放电容量达到202.5 m Ah·g^(-1),3C时放电容量仍然可保持在160.5 m Ah·g^(-1)。50℃在2.8~4.3 V,0.5C下循环100次后,容量保持率为91.9%,优于LiNi_(0.8)Co_(0.15)Al_(0.05)O_2和LiFePO_4/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2样品的72.9%和82.0%。展开更多
用硅烷偶联剂加热分解的简便方法对锂离子电池正极材料LiNi_(0.8)Co_(0.15)Al_(0.05)O_2(NCA)的表面进行处理,利用XRD结合Rietveld精修、SEM、TEM、DSC、EIS和恒流充放电等方法对材料进行表征。结果显示,硅烷偶联剂经450℃加热分解后得...用硅烷偶联剂加热分解的简便方法对锂离子电池正极材料LiNi_(0.8)Co_(0.15)Al_(0.05)O_2(NCA)的表面进行处理,利用XRD结合Rietveld精修、SEM、TEM、DSC、EIS和恒流充放电等方法对材料进行表征。结果显示,硅烷偶联剂经450℃加热分解后得到的非晶态Si O2均匀包覆在材料表面,包覆不改变NCA的晶体结构,但明显改善了材料性能。在60℃环境中,0.2C、1C下包覆材料(简写为a-NCA)的放电比容量分别为176.4、158.9 m Ah·g-1,高于NCA的174.2、153.8 m Ah·g-1;50周循环后a-NCA的容量保持率为91.4%,远高于NCA的86.5%;同时,经包覆后材料的热稳定性大幅度提高。其原因是包覆层抑制了NCA在循环过程中与电解液发生副反应,有效降低了离子迁移的界面膜电阻,并抑制了晶体结构变化。展开更多
以硝酸盐为原料,采用共沉淀法制备出Li Ni0.8Co0.15Al0.05O2正极材料,研究了反应温度对材料的结构以及电化学性能的影响。结果表明:烧结温度对晶体结构的完整性以及晶粒尺寸有很大的影响,温度过低时,无法形成完整的层状结构,阳离子混排...以硝酸盐为原料,采用共沉淀法制备出Li Ni0.8Co0.15Al0.05O2正极材料,研究了反应温度对材料的结构以及电化学性能的影响。结果表明:烧结温度对晶体结构的完整性以及晶粒尺寸有很大的影响,温度过低时,无法形成完整的层状结构,阳离子混排严重;温度太高,晶体生长过快,晶粒尺寸粗大,晶格常数变小,不利于充放电循环时锂离子的脱嵌,造成容量的损失。在500℃预烧结、800℃烧结时获得的材料具有最好结构性能以及电化学性能,0.1 C首次放电比容量为186.8 m Ah/g,5 C下仍能保持107.4 m Ah/g,具有优异的循环性能以及倍率性能。展开更多
采用共沉淀-喷雾干燥法制备了锂离子电池球形Li Ni0.8Co0.15Al0.05O2正极材料,通过热重分析法(TG)、X射线衍射光谱法(XRD)、扫描电子显微镜法(SEM)和电化学测试对材料的晶体结构、形貌及电化学性能进行了测试和表征。结果表明材...采用共沉淀-喷雾干燥法制备了锂离子电池球形Li Ni0.8Co0.15Al0.05O2正极材料,通过热重分析法(TG)、X射线衍射光谱法(XRD)、扫描电子显微镜法(SEM)和电化学测试对材料的晶体结构、形貌及电化学性能进行了测试和表征。结果表明材料具有良好的层状结构,球形颗粒粒径约10μm;在30℃下,2.5~4.3 V循环,以20 m A/g放电,首次比容量达186.3 m Ah/g,循环50次后容量保持率为84.1%。展开更多
基金Projects(15B054,17C0400) supported by the Scientific Research Fund of Hunan Provincial Education Department,ChinaProjects(2017JJ2060,2015JJ2042) supported by the Natural Science Foundation of Hunan Province,ChinaProject(2014-207) supported by the Aid Program for Science and Technology Innovative Research Team in Higher Educational Instituions of Hunan Province,China
文摘Different LiNi0.8Co0.15Al0.05O2 cathode materials were washed by ethanol solvent. Inductively coupled plasma atomic emission spectroscopy(ICP-AES), Fourier transformed infrared(FTIR) spectrum, X-ray diffraction(XRD), scanning electron microscopy(SEM), charge-discharge test and electrochemical impedance spectroscopy(EIS) were used to evaluate the elemental contents, structures, morphologies and electrochemical properties of samples. The results show that ethanol washing can remove effectively the synthetic residues LiOH/Li2 O on the freshly-prepared LiNi0.8Co0.15Al0.05O2 and make the sample much more resistant to H2O and CO2, without destroying its bulk structure, surface morphology and electrochemical performances. Moreover, the discharge specific capacity and cycle performance of LiNi0.8Co0.15Al0.05O2 after storage in air with a relative humidity of 80% for three months are improved by immediate ethanol washing.
基金supported by the National Natural Science Foundation of China (No. 51372178)the Natural Science Foundation for Distinguished Young Scholars of Hubei Province of China (No. 2013CFA021)
文摘The co-precipitation derived LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 cathode material was modified by a coating layer of TiP_2O_7 through an ethanol-based process. The TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 is characterized by Xray diffraction analysis, scanning electron microscopy and transmission electron microscopy to investigate the microstructure and morphology. The differential scanning calorimetry was employed to confirm the improved thermal stability. The electrochemical properties were evaluated by the constant-current charge/discharge tests. The TiP_2O_7 coating layer is effectively suppressing the structural degradation and ameliorating the surface status of LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 particles, and the intrinsic rhombohedral layered structure of TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 was well maintained during the long-term cycling process, while the surface structure of pristine LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 was degraded from rhombohedral R3 m layered structure to cubic rock-salt structure. The charged state Ni^(4+) ions will easily transform into Ni^(2+) when the electrolytes oxidized at the interface of cathode/electrolytes and formed the cubic rock-salt NiO type structure, and the cubic rock-salt structure without electrochemical activity on the surface of LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 particles will finally accelerate capacity fading. The thermal stability and cyclic performances of the LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 electrode were remarkably improved by TiP_2O_7 coating, the total amount of heat release corresponding to the intensity of thermal runaway were 1075.5 and 964.6 J/g for pristine LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 and TiP_2O_7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 respectively, the pouch shaped full cells that employed TiP 2 O7-coated LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 as cathode were able to perform more than 2200 cycles at 25 ℃ and more than 1000 cycles at 45 ℃ before the capacity retention fading to 80%.
文摘采用两步干混-球磨方法制备了石墨烯掺杂改性的锂离子电池LiFePO_4/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2复合正极材料,实现LiNi_(0.8)Co_(0.15)Al_(0.05)O_2材料的高容量和高安全性。借助X射线衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)、X射线光电子能谱(XPS)以及电化学测试等表征手段对材料的晶体结构、微观形貌和电化学性能进行了较系统的研究。结果表明,石墨烯的存在实现了Li Fe PO4材料在LiNi_(0.8)Co_(0.15)Al_(0.05)O_2材料表面的完全包覆,形成致密的包覆层,进一步抑制LiNi_(0.8)Co_(0.15)Al_(0.05)O_2与电解液之间的副反应,提高活性材料利用率和循环性能。三者之间构成导电网络,加快电子渗透和传输,提高倍率性能。Li Fe PO4质量分数为20%的Li Fe PO4-Graphene/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2样品具有最佳的容量性能和长循环性能,0.1C时放电容量达到202.5 m Ah·g^(-1),3C时放电容量仍然可保持在160.5 m Ah·g^(-1)。50℃在2.8~4.3 V,0.5C下循环100次后,容量保持率为91.9%,优于LiNi_(0.8)Co_(0.15)Al_(0.05)O_2和LiFePO_4/LiNi_(0.8)Co_(0.15)Al_(0.05)O_2样品的72.9%和82.0%。
文摘用硅烷偶联剂加热分解的简便方法对锂离子电池正极材料LiNi_(0.8)Co_(0.15)Al_(0.05)O_2(NCA)的表面进行处理,利用XRD结合Rietveld精修、SEM、TEM、DSC、EIS和恒流充放电等方法对材料进行表征。结果显示,硅烷偶联剂经450℃加热分解后得到的非晶态Si O2均匀包覆在材料表面,包覆不改变NCA的晶体结构,但明显改善了材料性能。在60℃环境中,0.2C、1C下包覆材料(简写为a-NCA)的放电比容量分别为176.4、158.9 m Ah·g-1,高于NCA的174.2、153.8 m Ah·g-1;50周循环后a-NCA的容量保持率为91.4%,远高于NCA的86.5%;同时,经包覆后材料的热稳定性大幅度提高。其原因是包覆层抑制了NCA在循环过程中与电解液发生副反应,有效降低了离子迁移的界面膜电阻,并抑制了晶体结构变化。
文摘采用共沉淀-高温固相法在氧气气氛下合成球形Li Ni0.8Co0.15Al0.05O2正极材料。通过XRD、SEM、恒电流充放电测试和交流阻抗测试等手段分析了氧化铝、氢氧化铝和异丙醇铝三种铝源对合成材料的结构、形貌以及电化学性能的影响。结果表明,以三种不同铝源所合成的正极材料均具有良好的层状结构。用异丙醇铝合成的正极材料具有最小的一次颗粒,球型度较好,具有优异的电化学性能,在0.2 C下首次放电比容量为189.22 m Ah/g,50次循环后容量保持率为84.2%。然后,通过EIS测试分析了不同铝源对合成材料性能影响的原因。
文摘以硝酸盐为原料,采用共沉淀法制备出Li Ni0.8Co0.15Al0.05O2正极材料,研究了反应温度对材料的结构以及电化学性能的影响。结果表明:烧结温度对晶体结构的完整性以及晶粒尺寸有很大的影响,温度过低时,无法形成完整的层状结构,阳离子混排严重;温度太高,晶体生长过快,晶粒尺寸粗大,晶格常数变小,不利于充放电循环时锂离子的脱嵌,造成容量的损失。在500℃预烧结、800℃烧结时获得的材料具有最好结构性能以及电化学性能,0.1 C首次放电比容量为186.8 m Ah/g,5 C下仍能保持107.4 m Ah/g,具有优异的循环性能以及倍率性能。
文摘采用共沉淀-喷雾干燥法制备了锂离子电池球形Li Ni0.8Co0.15Al0.05O2正极材料,通过热重分析法(TG)、X射线衍射光谱法(XRD)、扫描电子显微镜法(SEM)和电化学测试对材料的晶体结构、形貌及电化学性能进行了测试和表征。结果表明材料具有良好的层状结构,球形颗粒粒径约10μm;在30℃下,2.5~4.3 V循环,以20 m A/g放电,首次比容量达186.3 m Ah/g,循环50次后容量保持率为84.1%。