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在自组装病毒模板上构建分层功能层作为集成锂离子微电池的 3D 纳米阵列电极。

Architecturing hierarchical function layers on self-assembled viral templates as 3D nano-array electrodes for integrated Li-ion microbatteries.

机构信息

Department of Chemical and Biomolecular Engineering, University of Maryland, College Park, Maryland 20742, USA.

出版信息

Nano Lett. 2013 Jan 9;13(1):293-300. doi: 10.1021/nl304104q. Epub 2012 Dec 24.

Abstract

This work enables an elegant bottom-up solution to engineer 3D microbattery arrays as integral power sources for microelectronics. Thus, multilayers of functional materials were hierarchically architectured over tobacco mosaic virus (TMV) templates that were genetically modified to self-assemble in a vertical manner on current-collectors, so that optimum power and energy densities accompanied with excellent cycle-life could be achieved on a minimum footprint. The resultant microbattery based on self-aligned LiFePO(4) nanoforests of shell-core-shell structure, with precise arrangement of various auxiliary material layers including a central nanometric metal core as direct electronic pathway to current collector, delivers excellent energy density and stable cycling stability only rivaled by the best Li-ion batteries of conventional configurations, while providing rate performance per foot-print and on-site manufacturability unavailable from the latter. This approach could open a new avenue for microelectromechanical systems (MEMS) applications, which would significantly benefit from the concept that electrochemically active components be directly engineered and fabricated as an integral part of the integrated circuit (IC).

摘要

这项工作为 3D 微电池阵列的工程设计提供了一种优雅的自下而上的解决方案,可将其作为微电子学的集成电源。因此,在经过基因修饰的烟草花叶病毒(TMV)模板上分层构建了多层功能材料,使其能够以垂直方式自组装在集流器上,从而在最小的占地面积上实现最佳的功率和能量密度以及出色的循环寿命。基于自对准的具有壳核壳结构的 LiFePO4纳米森林的微电池,具有各种辅助材料层的精确排列,包括中央纳米级金属核作为与集流器的直接电子通路,提供了出色的能量密度和稳定的循环稳定性,仅略逊于传统构型的最佳锂离子电池,同时提供了后者无法提供的每英尺面积的倍率性能和现场制造能力。这种方法为微机电系统(MEMS)应用开辟了新途径,这将极大地受益于将电化学活性组件直接设计和制造为集成电路(IC)的一个组成部分的概念。

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