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用于胶体机器人的高能量密度皮升级锌空气微型电池。

High energy density picoliter-scale zinc-air microbatteries for colloidal robotics.

作者信息

Zhang Ge, Yang Sungyun, Yang Jing Fan, Gonzalez-Medrano David, Miskin Marc Z, Koman Volodymyr B, Zeng Yuwen, Li Sylvia Xin, Kuehne Matthias, Liu Albert Tianxiang, Brooks Allan M, Kumar Mahesh, Strano Michael S

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, PA 19104, USA.

出版信息

Sci Robot. 2024 Aug 14;9(93):eade4642. doi: 10.1126/scirobotics.ade4642.

Abstract

The recent interest in microscopic autonomous systems, including microrobots, colloidal state machines, and smart dust, has created a need for microscale energy storage and harvesting. However, macroscopic materials for energy storage have noted incompatibilities with microfabrication techniques, creating substantial challenges to realizing microscale energy systems. Here, we photolithographically patterned a microscale zinc/platinum/SU-8 system to generate the highest energy density microbattery at the picoliter (10 liter) scale. The device scavenges ambient or solution-dissolved oxygen for a zinc oxidation reaction, achieving an energy density ranging from 760 to 1070 watt-hours per liter at scales below 100 micrometers lateral and 2 micrometers thickness in size. The parallel nature of photolithography processes allows 10,000 devices per wafer to be released into solution as colloids with energy stored on board. Within a volume of only 2 picoliters each, these primary microbatteries can deliver open circuit voltages of 1.05 ± 0.12 volts, with total energies ranging from 5.5 ± 0.3 to 7.7 ± 1.0 microjoules and a maximum power near 2.7 nanowatts. We demonstrated that such systems can reliably power a micrometer-sized memristor circuit, providing access to nonvolatile memory. We also cycled power to drive the reversible bending of microscale bimorph actuators at 0.05 hertz for mechanical functions of colloidal robots. Additional capabilities, such as powering two distinct nanosensor types and a clock circuit, were also demonstrated. The high energy density, low volume, and simple configuration promise the mass fabrication and adoption of such picoliter zinc-air batteries for micrometer-scale, colloidal robotics with autonomous functions.

摘要

近期对微观自主系统的关注,包括微型机器人、胶体状态机和智能尘埃,引发了对微尺度能量存储和收集的需求。然而,用于能量存储的宏观材料与微制造技术存在不兼容性,给实现微尺度能量系统带来了巨大挑战。在此,我们通过光刻技术对微尺度锌/铂/ SU - 8系统进行图案化处理,以在皮升(10升)尺度上制造出能量密度最高的微型电池。该装置利用环境或溶液中溶解的氧气进行锌氧化反应,在尺寸小于100微米横向和2微米厚度的尺度下,实现了每升760至1070瓦时的能量密度。光刻工艺的并行特性使得每个晶圆上能有10000个器件作为胶体释放到溶液中,并在其上存储能量。这些一次微型电池每个仅2皮升的体积内,能够提供1.05±0.12伏的开路电压,总能量范围为5.5±0.3至7.7±1.0微焦耳,最大功率接近2.7纳瓦。我们证明了这样的系统能够可靠地为微米级忆阻器电路供电,实现非易失性存储。我们还循环供电以驱动微尺度双压电晶片致动器在0.05赫兹下可逆弯曲,用于胶体机器人的机械功能。还展示了其他功能,如为两种不同类型的纳米传感器和一个时钟电路供电。这种高能量密度、小体积和简单的配置有望实现这种皮升级锌空气电池的大规模制造,并应用于具有自主功能的微米级胶体机器人。

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