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Active thermal management of on-chip hot spots using EWOD-driven droplet microfluidics

机译:使用EWOD驱动的液滴微流体对芯片上热点进行主动热管理

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In response to the rapid advances in microelectronics, novel cooling technologies are needed to meet increasing cooling requirements. As a paradigm-shifting technique, electrowetting-on-dielectric (EWOD) uses electric potential to control the movement of a liquid droplet on a dielectric surface. In this work, we developed an EWOD-based microfluidic technique for active and adaptive thermal management of on-chip hot spots. A two-dimensional array of control electrodes was patterned on the chip surface for EWOD operations. By applying DC or AC voltages with appropriate sequence and timing to the electrode units, we were able to transport microdroplets of tens of μL along a programmable path. Without the need of external pumps and valves, the droplets were precisely delivered to cooling targets. With the driving voltage as low as 40 V_(AC), we demonstrate high heat flux (7.6 W/cm~2) cooling on a hot spot. The EWOD-induced internal circulation within the droplets led to a time-averaged Nusselt number of ?45.
机译:为了响应微电子学的快速发展,需要新颖的冷却技术来满足不断增长的冷却要求。作为一种范式转换技术,电介质上电润湿(EWOD)使用电势来控制液滴在电介质表面上的运动。在这项工作中,我们开发了基于EWOD的微流体技术,用于主动和自适应地对片上热点进行热管理。在芯片表面上图案化二维控制电极阵列,以进行EWOD操作。通过以适当的顺序和时序向电极单元施加DC或AC电压,我们能够沿可编程路径传输数十微升的微滴。无需外部泵和阀,液滴就可以精确地输送到冷却目标。在低至40 V_(AC)的驱动电压下,我们证明了在热点上的高热通量(7.6 W / cm〜2)冷却。液滴内EWOD引起的内部循环导致Nusselt的时间平均值为45。

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