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Maximizing the performance of photothermal actuators by combining smart materials with supplementary advantages

机译:通过将智能材料与其他优势相结合最大限度地提高光热执行器的性能

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摘要

The search for higher-performance photothermal microactuators has typically involved unavoidable trade-offs that hinder the demonstration of ubiquitous devices with high energy density, speed, flexibility, efficiency, sensitivity, and multifunctionality. Improving some of these parameters often implies deterioration of others. Photothermal actuators are driven by the conversion of absorbed optical energy into thermal energy, which, by different mechanisms, can produce mechanical displacement of a structure. We present a device that has been strategically designed to show high performance in every metric and respond to optical radiation of selected wavelength bands. The device combines the large energy densities and sensitivity of vanadium dioxide (VO2)–based actuators with the wavelength-selective absorption properties of single-walled carbon nanotube (SWNT) films of different chiralities. SWNT coatings increased the speed of VO2 actuators by a factor of 2 while decreasing the power consumption by approximately 50%. Devices coated with metallic SWNT were found to be 1.57 times more responsive to red light than to near-infrared, whereas semiconducting SWNT coatings resulted in 1.42 times higher responsivities to near-infrared light than to red light. The added functionality establishes a link between optical and mechanical domains of high-performance photoactuators and enables the future development of mechanical logic gates and electronic devices that are triggered by optical radiation from different frequency bands.
机译:寻找更高性能的光热微致动器通常涉及不可避免的折衷,这些折衷阻碍了具有高能量密度,速度,灵活性,效率,灵敏度和多功能性的无处不在的设备的演示。改善其中一些参数通常意味着其他参数会降低。光热致动器通过将吸收的光能转换成热能来驱动,而热能通过不同的机制可以产生结构的机械位移。我们介绍了一种经过战略性设计的设备,该设备可以在每个指标上显示出高性能,并对选定波段的光辐射做出响应。该设备将基于二氧化钒(VO2)的致动器的高能量密度和灵敏度与不同手性的单壁碳纳米管(SWNT)膜的波长选择吸收特性结合在一起。 SWNT涂层将VO2执行器的速度提高了2倍,同时将功耗降低了约50%。发现涂有金属SWNT的设备对红光的响应比对近红外的响应高1.57倍,而半导体SWNT涂层对近红外光的响应则比对红光高1.42倍。新增的功能在高性能光致动器的光学和机械域之间建立了联系,并使未来由不同频段的光辐射触发的机械逻辑门和电子设备的开发成为可能。

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