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A Hexagonal Pillar Array of Thermo-responsive Soft Actuators Prepared by Nanoimprinting

机译:纳米压印制备的热响应软致动器的六角形柱阵列

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Thermo-responsive actuation (thermomechanical effects) based on nematic liquid crystal elastomers (LCEs) have become a research priority in the preparation of soft actuators. Nematic LCEs combine the anisotropic features of liquid crystal phases with the rubber elasticity of polymer network. When heated at nematic to isotropic phase transition temperature {N-to-I temp.), a uniaxial thermomechanical deformation of LCEs will undergo at nearly constant volume due to a change of LC director order. Recently, an array of the micro-sized LCE pillars related to such thermomechanical effects have been successfully constructed through a soft lithography technology (i.e., replica molding). The prepared LCE pillars are mono-dispersive and micro-sized. They also possess N-to-I temp, higher than 100°C, largely limiting the available application. By contrast, the present study will report a hexagonal array of nano-sized thermo-responsive pillar actuators that are able to contract and expand in response to temperature changes around a lower N-to-I temp, is manufactured via using reactive rod-like liquid crystal and ultraviolet nanoimprinting technology. According to atomic force microscope (AFM) observation, a hexagonal array of pillars can be easily constructed by nanoimprinting and a responsive surface with a thermo-stimuli-driven roughness change is achieved. The room-temperature AFM scans quantitatively represent the single pillar shows a diameter of ca. 270 nm and 140 nm in depth, and the pitch meaning the averaged inter-pillar distance is measured as ca. 425 nm, thus lying in a nano-sized range. Furthermore, temperature-variable AFM is also utilized to demonstrate the pillar behaves as a thermally-stimulated nano-sized actuator. In our case, when heated above N-to-I phase transition temperature (ca. 65°C), it is clearly observed that the pillar diameter is expanded in the order of over 12-15% and then reversibly contracted in response to temperature drop.
机译:基于向列液晶弹性体(LCE)的热响应致动(热机械效应)已成为制备软致动器的研究优先。向甲型LCE将液晶相的各向异性特征与聚合物网络的橡胶弹性结合在一起。当在向列中加热到各向同性相变温度(N-TO-I温度)时,由于LC导演订单的变化,LCE的单轴热机械变形将在几乎恒定的体积处发生。最近,通过软光刻技术(即,复制品成型)成功地构造了与这种热机械效应相关的微型LCE支柱的阵列。准备的LCE支柱是单分散和微尺寸的。它们还拥有N-to-I温度,高于100°C,很大程度上限制了可用的应用。相比之下,本研究将报告一种六边形阵列的纳米大小的热响应柱致动器,其能够响应于围绕N-TO-I温度的温度变化而响应于温度变化而延伸,通过使用反应棒状制造液晶和紫外线纳米印刷技术。根据原子力显微镜(AFM)观察,通过纳米压印容易地构造六边形柱,并且实现了具有热刺激驱动的粗糙度变化的响应表面。房间温度AFM扫描定量代表单个柱子显示CA的直径。深度为270nm和140nm,并且音调意味着平均柱间距距离被测量为CA. 425 nm,因此躺在纳米大小范围内。此外,温度可变AFM也用于展示柱的表现为热刺激的纳米尺寸致动器。在我们的情况下,当加热以上的N- I相转变温度(约65℃)时,清楚地观察到柱直径以超过12-15%的顺序膨胀,然后响应于温度而可逆地收缩降低。

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