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首页> 外文期刊>Advanced energy materials >All-Solid-State Lithium-Ion Microbatteries Using Silicon Nanofilm Anodes: High Performance and Memory Effect
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All-Solid-State Lithium-Ion Microbatteries Using Silicon Nanofilm Anodes: High Performance and Memory Effect

机译:使用硅纳米膜阳极的全固态锂离子微电池:高性能和记忆效应

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摘要

All-solid-state thin film lithium batteries are promising devices to power the next generations of autonomous microsystems. Nevertheless, some industrial constraints such as the resistance to reflow soldering (260 °C) and to short-circuiting necessitate the replacement of the lithium anode. In this study, a 2 V lithium-ion system based on amorphous silicon nanofilm anodes (50–200 nm thick), a LiPON electrolyte, and a new lithiated titanium oxysulfide cathode Li1.2TiO0.5S2.1 is prepared by sputtering. The determination of the electrochemical behavior of each active material and of whole systems with different configurations allows the highlighting of the particular behavior of the LixSi electrode and the understanding of its consequences on the performance of Li-ion cells. Lithium-ion microbatteries processed with industrial tools and embedded in microelectronic packages exhibit particularly high cycle life (−0.006% cycle−1), ultrafast charge (80% capacity in 1 min), and tolerate both short-circuiting and reflow soldering. Moreover, the perfect stability of the system allows the assignment of some modifications of the voltage curve and a slow and reversible capacity fade occurring in specific conditions, to the formation of Li15Si4 and to the expression of a “memory effect.” These new findings will help to optimize the design of future Li-ion systems using nanosized silicon anodes.
机译:全固态薄膜锂电池是为下一代自主微系统供电的有前途的设备。然而,由于工业上的一些限制,例如耐回流焊(260°C)和短路,必须更换锂阳极。在这项研究中,通过溅射制备了基于非晶硅纳米膜阳极(50-200 nm厚),LiPON电解质和新型锂化氧硫化钛阴极Li1.2TiO0.5S2.1的2 V锂离子系统。确定每种活性材料以及具有不同配置的整个系统的电化学行为,可以突出显示LixSi电极的特殊行为,并了解其对锂离子电池性能的影响。用工业工具加工并嵌入微电子封装中的锂离子微电池具有极高的循环寿命(-0.006%循环-1),超快充电(1分钟内容量为80%),并且可以承受短路和回流焊接。此外,系统的完美稳定性允许对电压曲线进行某些修改,并在特定条件下进行缓慢且可逆的容量衰减,以形成Li15Si4并表达“记忆效应”。这些新发现将有助于优化未来使用纳米硅阳极的锂离子系统的设计。

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