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A low-temperature-operated direct fabrication method for all-solid-state flexible micro-supercapacitors

机译:全固态柔性微型超级电容器的低温直接制造方法

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摘要

Flexible micro-supercapacitors (MSCs) are promising candidates as miniaturized power sources and energy storage components for next generation wearable electronic devices. Herein, we report a low-temperature-operated ((similar to)80 degrees C) direct fabrication method for the realization of flexible MSCs. To demonstrate the capability of the fabrication method, a flexible MSC based on zinc oxide (ZnO) nanorod/titanium (Ti)/titanium nitride (TiN) core-shell nanostructures and metallic interdigits on a polyethylene terephthalate (PET) substrate was fabricated, with no additional transfer procedure required. The as-produced MSC exhibits increased power (432 W kg(-1)) and energy (0.24 Wh kg(-1)) densities, when compared to those of ZnO nanorod based or ZnO seed layer/Ti/TiN based devices. The capacitance retention is over 98% after 5000 cycles, showing an excellent stability. The flexibility of the MSC is tested by bending the device from 0 degrees to 180 degrees, demonstrating nearly identical electrochemical properties for all bending angles. With such a low temperature environment, the proposed fabrication strategy can be applied to other material networks to further improve the performance of MSCs. This method potentially allows for mass production due to its low fabrication complexity, paving the way for the direction fabrication of on-chip MSCs for flexible and wearable devices.
机译:柔性微型超级电容器(MSC)有望成为下一代可穿戴电子设备的小型电源和储能组件。在这里,我们报告了一种低温操作(类似于80摄氏度)的直接制造方法,用于实现柔性MSC。为了证明该制造方法的能力,在聚对苯二甲酸乙二醇酯(PET)基底上制造了基于氧化锌(ZnO)纳米棒/钛(Ti)/氮化钛(TiN)核-壳纳米结构和金属叉指的柔性MSC,并用无需其他转移程序。与基于ZnO纳米棒或ZnO籽晶层/ Ti / TiN的器件相比,所产生的MSC表现出更高的功率(432 W kg(-1))和能量(0.24 Wh kg(-1))密度。 5000次循环后,电容保持率超过98%,显示出出色的稳定性。通过将设备从0度弯曲到180度来测试MSC的柔韧性,证明所有弯曲角度的电化学性能几乎相同。在这样的低温环境下,所提出的制造策略可以应用于其他材料网络,以进一步提高MSC的性能。该方法由于其较低的制造复杂性而潜在地允许大规模生产,从而为用于柔性和可穿戴设备的片上MSC的定向制造铺平了道路。

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