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Printable magnesium?ion quasi-solid-state asymmetric supercapacitors for flexible solar-charging integrated units

机译:可印刷的镁?离子准固态不对称超微电容器,适用于柔性太阳能充电集成单元

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Wearable and portable self-powered units have stimulated considerable attention in both the scientific and technological realms. However, their innovative development is still limited by inefficient bulky connections between functional modules, incompatible energy storage systems with poor cycling stability, and real safety concerns. Herein, we demonstrate a flexible solar-charging integrated unit based on the design of printed magnesium ion aqueous asymmetric supercapacitors. This power unit exhibits excellent mechanical robustness, high photo-charging cycling stability (98.7% capacitance retention after 100 cycles), excellent overall energy conversion and storage efficiency (ηsuboverall/sub?=?17.57%), and outstanding input current tolerance. In addition, the Mg?ion quasi-solid-state asymmetric supercapacitors show high energy density up to 13.1 mWh cmsup-3/sup via pseudocapacitive ion storage as investigated by an operando X-ray diffraction technique. The findings pave a practical route toward the design of future self-powered systems affording favorable safety, long life, and high energy.
机译:可穿戴和便携式的自动部件在科技领域刺激了相当大的关注。然而,他们的创新发展仍然受到功能模块之间的低弱大连接,循环稳定性差,实际安全问题的不兼容的能量存储系统的限制。这里,我们展示了一种基于印刷镁离子含水不对称超级电容器的设计的柔性太阳能充电集成单元。该电源单元具有出色的机械稳健性,高光电充电循环稳定性(在100次循环后的98.7%的电容保留),优异的整体能量转换和储存效率(η总体?=?17.57%)和出色输入电流公差。此外,Mgα离子准固态不对称超级电容器通过伪电容离子储存显示高达13.1mwh cm -3 / sup>的高能量密度,如Ouckando X射线衍射技术所研究的。该研究结果铺设了一种实用的路线,朝着未来的自动系统设计提供了有利的安全性,长寿和高能量的设计。

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