Kim Sangtae, Choi Soon Ju, Zhao Kejie, Yang Hui, Gobbi Giorgia, Zhang Sulin, Li Ju
Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Nat Commun. 2016 Jan 6;7:10146. doi: 10.1038/ncomms10146.
Efficient mechanical energy harvesters enable various wearable devices and auxiliary energy supply. Here we report a novel class of mechanical energy harvesters via stress-voltage coupling in electrochemically alloyed electrodes. The device consists of two identical Li-alloyed Si as electrodes, separated by electrolyte-soaked polymer membranes. Bending-induced asymmetric stresses generate chemical potential difference, driving lithium ion flux from the compressed to the tensed electrode to generate electrical current. Removing the bending reverses ion flux and electrical current. Our thermodynamic analysis reveals that the ideal energy-harvesting efficiency of this device is dictated by the Poisson's ratio of the electrodes. For the thin-film-based energy harvester used in this study, the device has achieved a generating capacity of 15%. The device demonstrates a practical use of stress-composition-voltage coupling in electrochemically active alloys to harvest low-grade mechanical energies from various low-frequency motions, such as everyday human activities.
高效的机械能采集器可为各种可穿戴设备及辅助能源供应提供支持。在此,我们报告了一类通过电化学合金化电极中的应力 - 电压耦合实现的新型机械能采集器。该装置由两个相同的锂合金化硅作为电极组成,由浸泡电解质的聚合物膜隔开。弯曲引起的不对称应力产生化学势差,驱动锂离子从压缩电极流向拉伸电极以产生电流。消除弯曲会使离子通量和电流反向。我们的热力学分析表明,该装置的理想能量采集效率由电极的泊松比决定。对于本研究中使用的基于薄膜的能量采集器,该装置已实现15%的发电能力。该装置展示了电化学活性合金中应力 - 成分 - 电压耦合在从各种低频运动(如日常人类活动)中采集低品位机械能方面的实际应用。