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Synergistic Effects of a Multifunctional Graphene Based Interlayer on Electrochemical Behavior and Structural Stability

机译:多功能石墨烯基中间层对电化学行为和结构稳定性的协同作用

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The ability to rationally design and manipulate the interfacial structure in lithium ion batteries (LIBs) is of utmost technological importance for achieving desired performance requirements as it provides synergistic effects to the electrochemical properties and cycling stability of electrode materials. However, despite considerable efforts and progress made in recent years through the interface engineering based on active electrode materials, relatively little attention has been devoted to address the physical aspects of the interface and interfacial layer between the anode materials layer and the current collector. Here, we propose and successfully grow unique graphene directly on a Cu current collector as an ideal interfacial layer using the modified chemical vapor deposition (CVD). The anode with an engineered graphene interlayer exhibits remarkably improved electrochemical performances, such as large reversible specific capacity (921.4 mAh g(-1) at current density of 200 mA CI), excellent Coulombic efficiency (close to approximately 96%), and superior cycling capacity retention and rate properties compared to the bare Cu. These excellentelectrochemical features are discussed in terms of multiple beneficial effects of graphene on interfacial stability and adhesion between the anode and the collector, oxidation or corrosion resistance of the graphene grown Cu current collector, and electrical contact conductance during the charge/discharge process.
机译:合理设计和操纵锂离子电池(LIB)界面结构的能力对于实现所需的性能要求至关重要,因为它为电极材料的电化学性能和循环稳定性提供了协同效应。然而,尽管近年来通过基于活性电极材料的界面工程通过了相当大的努力和取得了进展,但是相对较少的注意力已经投入到解决阳极材料层和集流体之间的界面和界面层的物理方面。在这里,我们提出并使用改进的化学气相沉积(CVD)技术,在理想的界面层上直接在Cu集电器上成功生长出独特的石墨烯。具有工程石墨烯中间层的阳极具有显着改善的电化学性能,例如大的可逆比容量(在200 mA CI的电流密度下为921.4 mAh g(-1)),出色的库仑效率(接近96%)和出色的循环性能与裸铜相比,容量保持率和速率特性。从石墨烯对阳极稳定性和集电器之间的界面稳定性和粘合性,石墨烯生长的铜集电器的抗氧化或耐腐蚀性能以及充电/放电过程中的电接触电导率的多种有益影响方面讨论了这些优异的电化学特性。

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