Material Science & Engineering School, University of Shanghai for Science and Technology , Shanghai 200093, China.
Shanghai Electrochemical Energy Devices Research Center, Department of Chemical Engineering, Shanghai Jiao Tong University , Shanghai 200240, China.
ACS Appl Mater Interfaces. 2016 Dec 28;8(51):35114-35122. doi: 10.1021/acsami.6b08901. Epub 2016 Dec 19.
Flexible polypyrrole (PPy) films with highly ordered structures were fabricated by a novel vapor phase polymerization (VPP) process and used as the anode material in lithium-ion batteries (LIBs) and sodium-ion batteries (SIBs). The PPy films demonstrate excellent rate performance and cycling stability. At a charge/discharge rate of 1 C, the reversible capacities of the PPy film anode reach 284.9 and 177.4 mAh g in LIBs and SIBs, respectively. Even at a charge/discharge rate of 20 C, the reversible capacity of the PPy film anode retains 54.0% and 52.9% of the capacity of 1 C in LIBs and SIBs, respectively. After 1000 electrochemical cycles at a rate of 10 C, there is no obvious capacity fading. The molecular structure and electrochemical behaviors of Li- and Na-ion doping and dedoping in the PPy films are investigated by XPS and ex situ XRD. It is believed that the PPy film electrodes in the overoxidized state can be reversibly charged and discharged through the doping and dedoping of lithium or sodium ions. Because of the self-adaptation of the doped ions, the ordered pyrrolic chain structure can realize a fast charge/discharge process. This result may substantially contribute to the progress of research into flexible polymer electrodes in various types of batteries.
通过一种新颖的气相聚合(VPP)工艺制备了具有高度有序结构的柔性聚吡咯(PPy)薄膜,并将其用作锂离子电池(LIBs)和钠离子电池(SIBs)的阳极材料。PPy 薄膜表现出优异的倍率性能和循环稳定性。在 1 C 的充放电速率下,PPy 薄膜阳极的可逆容量分别达到 284.9 和 177.4 mAh g 在 LIBs 和 SIBs 中。即使在 20 C 的充放电速率下,PPy 薄膜阳极在 LIBs 和 SIBs 中的容量也分别保持 1 C 时容量的 54.0%和 52.9%。在 10 C 的速率下经过 1000 次电化学循环后,没有明显的容量衰减。通过 XPS 和原位 XRD 研究了 Li 和 Na 离子掺杂和脱掺杂在 PPy 薄膜中的分子结构和电化学行为。据信,在过氧化物状态下的 PPy 薄膜电极可以通过掺杂和脱掺杂锂离子或钠离子实现可逆充电和放电。由于掺杂离子的自适应,掺杂的吡咯链结构可以实现快速的充放电过程。这一结果可能对各种类型电池中柔性聚合物电极的研究进展有重要贡献。