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Hybrid supercapacitor-battery materials for fast electrochemical charge storage

机译:用于快速电化学电荷存储的混合超级电容器电池材料

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摘要

High energy and high power electrochemical energy storage devices rely on different fundamental working principles - bulk vs. surface ion diffusion and electron conduction. Meeting both characteristics within a single or a pair of materials has been under intense investigations yet, severely hindered by intrinsic materials limitations. Here, we provide a solution to this issue and present an approach to design high energy and high power battery electrodes by hybridizing a nitroxide-polymer redox supercapacitor (PTMA) with a Li-ion battery material (LiFePO4). The PTMA constituent dominates the hybrid battery charge process and postpones the LiFePO4 voltage rise by virtue of its ultra-fast electrochemical response and higher working potential. We detail on a unique sequential charging mechanism in the hybrid electrode: PTMA undergoes oxidation to form high-potential redox species, which subsequently relax and charge the LiFePO4 by an internal charge transfer process. A rate capability equivalent to full battery recharge in less than 5 minutes is demonstrated. As a result of hybrid?s components synergy, enhanced power and energy density as well as superior cycling stability are obtained, otherwise difficult to achieve from separate constituents.
机译:高能量和高功率电化学能量存储设备依赖于不同的基本工作原理-体积与表面离子扩散以及电子传导。在单一或一对材料中同时满足这两个特性的问题已经受到了广泛的研究,但受到固有材料限制的严重阻碍。在这里,我们为这个问题提供了解决方案,并提出了一种通过将氮氧化物聚合物氧化还原超级电容器(PTMA)与锂离子电池材料(LiFePO4)混合来设计高能量和高功率电池电极的方法。 PTMA成分具有超快的电化学响应和较高的工作电势,因此在混合动力电池的充电过程中起着主导作用,并延迟了LiFePO4的电压上升。我们详细介绍了混合电极中独特的顺序充电机制:PTMA进行氧化形成高电位氧化还原物质,随后通过内部电荷转移过程使LiFePO4松弛并充电。演示了在不到5分钟的时间内即可充满电的速率功能。由于混合动力部件的协同作用,获得了增强的功率和能量密度以及出色的循环稳定性,否则很难通过单独的组分实现。

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