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Varifocal liquid lens based on microelectrofluidic technology

机译:基于微流控技术的液体变焦镜头

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This Letter presents a tunable liquid lens based on microelectrofluidic technology. In the microelectrofluidic lens (MEFL), electrowetting in the hydrophobic surface channel induces the Laplace pressure difference between two fluidic interfaces on the lens aperture and the surface channel. Then, the pressure difference makes the lens curvature tunable. In spite of the contact angle saturation, the narrow surface channel increases the Laplace pressure to have a wide range of optical power variation in the MEFL. The magnitude of the applied voltage determines the lens curvature in the analog mode MEFL. Digital operation is also possible when the control electrodes of the MEFL are patterned to have an array. The lens aperture and maximum surface channel diameter were designed to 3.2 mm and 6.4 mm, respectively, with a channel height of 0.2 mm for an optical power range between +210 and -30 D. By switching the control electrodes, the averaged transit time in steps and turnaround time were as low as 2.4 ms and 16.5 ms, respectively, in good agreement with the simulation results. It is expected that the proposed MEFL may be widely used with advantages of wide variation of the optical power with fast and precise controllability in a digital manner.
机译:这封信提出了一种基于微电流体技术的可调液体透镜。在微电流体透镜(MEFL)中,疏水表面通道中的电润湿会在透镜孔和表面通道上的两个流体界面之间引起拉普拉斯压力差。然后,压力差使透镜曲率可调。尽管接触角饱和,但狭窄的表面通道会增加拉普拉斯压力,从而使MEFL中的光功率变化范围很大。施加电压的大小决定了模拟模式MEFL中的透镜曲率。当将MEFL的控制电极图案化以具有阵列时,数字操作也是可能的。透镜孔径和最大表面通道直径分别设计为3.2 mm和6.4 mm,通道高度为0.2 mm,用于光焦度在+210和-30 D之间。通过切换控制电极,平均传输时间为步长和周转时间分别低至2.4 ms和16.5 ms,与仿真结果非常吻合。期望所提出的MEFL可以以数字方式快速且精确地可控制的优点在于光功率的广泛变化的优点而被广泛使用。

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