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在微火箭设计、延长运动和独特性能中利用铁的引人注目的化学和磁性特性。

Utilizing Iron's Attractive Chemical and Magnetic Properties in Microrocket Design, Extended Motion, and Unique Performance.

作者信息

Karshalev Emil, Chen Chuanrui, Marolt Gregor, Martín Aída, Campos Isaac, Castillo Roxanne, Wu Tianlong, Wang Joseph

机构信息

Department of Nanoengineering, University of California, San Diego, La Jolla, CA, 92093, USA.

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, P. R. China.

出版信息

Small. 2017 Jun;13(21). doi: 10.1002/smll.201700035. Epub 2017 Apr 10.

Abstract

All-in-one material for microrocket propulsion featuring acid-based bubble generation and magnetic guidance is presented. Electrochemically deposited iron serves as both a propellant, toward highly efficient self-propulsion in acidic environments, and as a magnetic component enabling complete motion control. The new microrockets display longer lifetime and higher propulsion efficiency compared to previously reported active metal zinc-based microrockets due to the chemical properties of iron and the unique structure of the microrockets. These iron-based microrockets also demonstrate unique and attractive cargo towing and autonomous release capabilities. The latter is realized upon loss of the magnetic properties due to acid-driven iron dissolution. More interestingly, these bubble-propelled microrockets assemble via magnetic interactions into a variety of complex configurations and train structures, which enrich the behavior of micromachines. Modeling of the magnetic forces during the microrocket assembly and cargo capture confirms these unique experimentally observed assembly and cargo-towing behaviors. These findings provide a new concept of blending propellant and magnetic components into one, toward simplifying the design and fabrication of artificial micro/nanomachines, realizing new functions and capabilities for a variety of future applications.

摘要

介绍了一种用于微火箭推进的一体化材料,其具有基于酸的气泡产生和磁导向功能。电化学沉积的铁既作为推进剂,在酸性环境中实现高效的自推进,又作为磁性组件实现完全的运动控制。与先前报道的基于活性金属锌的微火箭相比,新型微火箭由于铁的化学性质和微火箭的独特结构,具有更长的寿命和更高的推进效率。这些基于铁的微火箭还展示了独特且吸引人的货物牵引和自主释放能力。后者是由于酸驱动的铁溶解导致磁性丧失而实现的。更有趣的是,这些气泡推进的微火箭通过磁相互作用组装成各种复杂的构型和列车结构,丰富了微机器的行为。微火箭组装和货物捕获过程中磁力的建模证实了这些独特的实验观察到的组装和货物牵引行为。这些发现提供了一种将推进剂和磁性组件融合为一体的新概念,有助于简化人造微/纳米机器的设计和制造,为各种未来应用实现新的功能和能力。

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