Zhang Yifan, Zhang Yamin, Cao Yi, Xie Minghao, Li Jiabao, Balzer Alex, Liu Nian, John Zhang Z
School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
Chemistry. 2021 Sep 6;27(50):12900-12909. doi: 10.1002/chem.202102098. Epub 2021 Jul 22.
Spinel ferrites are promising anode materials for lithium-ion batteries (LIBs) owing to their high theoretical specific capacities. However, their practical application is impeded by inherent low conductivity and severe volume expansion, which can be surpassed by increasing the surface-to-volume ratio of nanoparticles. Currently, most methods produce spinel ferrite nanoparticles with large size and severe aggregation, degrading their electrochemical performance. In this study, a low-temperature aminolytic route was designed to synthesize sub-10 nm CoFe O nanoparticles with good dispersion through carefully exploiting the reaction of acetates and oleylamine. The performance of CoFe O nanoparticles obtained by a traditional co-precipitation method was also investigated for comparison. This work demonstrates that CoFe O nanoparticles synthesized by the aminolytic route are promising as anode materials for LIBs. Besides, this method can be extended to design other spinel ferrites for energy storage devices with superior performance by simply changing the starting material, such as MnFe O , MgFe O , ZnFe O , and so on.
由于具有较高的理论比容量,尖晶石铁氧体是锂离子电池(LIBs)颇具前景的负极材料。然而,其实际应用受到固有低电导率和严重体积膨胀的阻碍,而通过增加纳米颗粒的表面积与体积之比可以克服这些问题。目前,大多数方法制备的尖晶石铁氧体纳米颗粒尺寸较大且严重团聚,从而降低了它们的电化学性能。在本研究中,通过精心利用醋酸盐与油胺的反应,设计了一种低温氨解路线来合成具有良好分散性的亚10 nm CoFe₂O₄纳米颗粒。为作比较,还研究了通过传统共沉淀法获得的CoFe₂O₄纳米颗粒的性能。这项工作表明,通过氨解路线合成的CoFe₂O₄纳米颗粒作为LIBs的负极材料很有前景。此外,通过简单改变起始原料,如MnFe₂O₄、MgFe₂O₄、ZnFe₂O₄等,该方法可扩展用于设计其他性能优异的储能器件用尖晶石铁氧体。