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首页> 外文期刊>Nano Energy >Hybrid nanomanufacturing of mixed-dimensional manganese oxide/graphene aerogel macroporous hierarchy for ultralight efficient supercapacitor electrodes in self-powered ubiquitous nanosystems
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Hybrid nanomanufacturing of mixed-dimensional manganese oxide/graphene aerogel macroporous hierarchy for ultralight efficient supercapacitor electrodes in self-powered ubiquitous nanosystems

机译:混合维锰氧化物/石墨烯气凝块的杂交纳米型超高高效超级纳米系统中的超广视纳米系统

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摘要

The economic production of wearable energy storage devices exhibiting mechanically-compliable form factors and reliable performance enable exciting opportunities in emerging technologies of consumer electronics, human-machine interface, and the Internet of Things. Here we report a hybrid scheme for designing and nanomanufacturing ultralight, high-performance supercapacitor electrodes through the hydrothermal growth of two-dimensional MnO2 on three-dimensional printed graphene aerogel (GA). The derived mixed-dimensional hierarchical macroporous composite electrodes exhibit superior specific capacitance and excellent cycling stability after thousands of cycles. We further explored the integration of a contact mode triboelectric nanogenerator and a mixed-dimensional MnO2/GA based supercapacitor into a self-powered system that is capable of converting mechanical signals into electrical power and further storing such scavenged power. The holistic integration of energy harvesting and storage units promises the implementation of self-powered wearable devices with greater intelligence that can scavenge and store environmental energy through sustainable pathways for ubiquitous electronics in societally-pervasive applications.
机译:可穿戴能量存储装置的经济生产表现出机械可易合理的形式因素和可靠的性能,使得在消费电子,人机界面和物联网的新兴技术方面使令人兴奋的机会。在这里,我们通过三维印刷石墨烯气凝胶(Ga)上的二维MnO2的水热生长来报告一种用于设计和纳米型高性能超级涂物电极的混合方案。衍生的混合尺寸分层大孔复合电极具有较高的特定电容和成千上万的循环后的优异循环稳定性。我们进一步探索了接触模式摩擦纳米电器和基于混合尺寸MNO2 / GA的超级电容器的自动系统中的整合,该自动系统能够将机械信号转换成电力并进一步存储这种清除功率。能量收集和储存单元的整体整合承诺实现具有更大智能的自动穿戴设备,可以通过在社会普遍应用中的可持续途径中清除和储存环境能量。

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