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模板辅助制备盐非依赖型催化管状微引擎。

Template-assisted fabrication of salt-independent catalytic tubular microengines.

机构信息

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

出版信息

ACS Nano. 2010 Apr 27;4(4):1799-804. doi: 10.1021/nn1000468.

Abstract

A simplified template-assisted layering approach for preparing catalytic conical tube microjet engines based on sequential deposition of platinum and gold on an etched silver wire template followed by dicing and dissolution of the template is described. The method allows detailed control over the tube parameters and hence upon the performance of the microengine. The recoiling bubble propulsion mechanism of the tubular microengine, associated with the ejection of internally generated oxygen microbubbles, addresses the ionic-strength limitation of catalytic nanowire motors and leads to a salt-independent movement. Similar rates of bubble generation and motor speeds are observed in salt-free and salt-rich media (at elevated ionic-strength environments as high as 1 M NaCl). Plating of an intermediate nickel layer facilitates a magnetically guided motion as well as the pickup and transport of large (magnetic) "cargo". Surfactant addition is shown to decrease the surface tension and offer a more frequent formation of dense smaller bubbles. The new and improved motor capabilities along with the simple preparation route hold great promise for using catalytic micromotors in diverse and important applications.

摘要

一种简化的模板辅助分层方法,用于制备基于在蚀刻银线模板上顺序沉积铂和金,然后切割和溶解模板的催化锥形管微喷射发动机。该方法允许对管参数进行详细控制,从而控制微发动机的性能。管状微发动机的反冲气泡推进机制与内部产生的氧气微气泡的喷射相关联,解决了催化纳米线发动机的离子强度限制问题,并导致与盐无关的运动。在无盐和富盐介质(在高达 1 M NaCl 的高离子强度环境中)中观察到类似的气泡生成和马达速度。中间镍层的电镀有利于磁引导运动以及大(磁性)“货物”的拾取和运输。添加表面活性剂可降低表面张力并更频繁地形成密集的小气泡。新的改进的发动机性能以及简单的制备路线为在各种重要应用中使用催化微型发动机提供了巨大的希望。

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