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Ripple-Free Boost-Mode Power Supply Using Photonic Power Conversion

机译:使用光子功率转换的无纹波升压模式电源

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Photonic power converters (PPCs) are a class of photovoltaic devices designed for efficient conversion of monochromatic (laser or LED) light to electricity. These devices are composed of multiple p-n junction diodes arranged in a tandem configuration and connected in series. They have reached high energy conversion efficiencies (70%) and areal power densities of 100 W/cm$^2$. When these devices are illuminated with a high-efficiency diode laser, they can provide isolated dc–dc conversion from the laser voltage (<2.3 V) to the open-circuit voltage of the PPC (1.2 to 23 V) with low capacitance and low conducted electromagnetic interference (EMI) compared to conventional switching power converters. The voltage conversion ratio is controlled by varying the number of p-n junctions in the PPC from 1 to 20 in demonstrated designs. In this paper, we demonstrate the use of photonic power conversion within two new applications. First, the laser/PPC unit is applied as a linear photonic boost converter, producing a regulated 12 V output stepped-up from a 3.3 V input to the control board. Output ripple is negligible as compared with a switching boost converter of similar size. Efficiency of this linear, regulated dc–dc conversion system was 12.7%, compared with a 77.6% reference switch-mode converter. Power density was 0.18 W/cm$^{3}$, compared with 1.5 W/cm$^{3}$for the reference. Relative to switch-mode power conversion, the photonic technology has lower efficiency and lower power density, but superior isolation and rejection of ripple and EMI. Both technologies are highly scalable. For the second application, the same unit is applied to power a 650-V SiCmosfetgate driver requiring high galvanic isolation, demonstrating a 20 dB reduction in conducted-current EMI from the power circuit into the low-voltage control systems.
机译:光子功率转换器(PPC)是一类光伏设备,旨在将单色(激光或LED)光有效转换为电。这些器件由多个串联配置的p-n结二极管组成。它们已经达到了高能量转换效率(70%),面功率密度为100W / cm n $ ^ 2 $ n。当这些设备用高效二极管激光器照明时,它们可以提供隔离的dc-dc转换,从激光电压(<2.3V)到PPC的开路电压(1.2至23V),具有低电容和低与传统的开关电源转换器相比,其传导的电磁干扰(EMI)更高。在演示的设计中,通过将PPC中p-n结的数量从1更改为20来控制电压转换比。在本文中,我们演示了在两个新应用中使用光子功率转换的情况。首先,将激光/ PPC单元用作线性光子升压转换器,从控制板上的3.3V输入产生升压后的稳定12V输出。与类似尺寸的开关升压转换器相比,输出纹波可以忽略不计。与77.6%的参考开关模式转换器相比,这种线性,稳定的dc-dc转换系统的效率为12.7%。功率密度为0.18 W / cm n <在线公式xmlns:mml = “ http://www.w3.org/1998/Math/MathML ” xmlns:xlink = “ http://www.w3。 org / 1999 / xlink “> $ ^ {3} $ n,与之相比则为1.5W / cm n <内联公式xmlns:mml = “ http://www.w3.org/1998/Math/MathML ” xmlns:xlink = “ http://www.w3.org/1999/xlink ”> $ ^ {3} $ n作为参考。相对于开关模式功率转换,光子技术具有较低的效率和较低的功率密度,但具有出色的隔离度和纹波及EMI抑制能力。两种技术都是高度可扩展的。对于第二个应用程序,使用相同的单元为650V SiC n mosfet栅极驱动器,需要高度电隔离,这表明从电源电路到低压控制系统的传导EMI降低了20dB。 。

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