Homulle Harald, Visser Stefan, Patra Bishnu, Charbon Edoardo
QuTech, Delft University of Technology, 2628CD Delft, The Netherlands.
Rev Sci Instrum. 2018 Jan;89(1):014703. doi: 10.1063/1.5004484.
In this paper, we show how a deep-submicron field-programmable gate array (FPGA) can be operated more stably at extremely low temperatures through special firmware design techniques. Stability at low temperatures is limited through long power supply wires and reduced performance of various printed circuit board components commonly employed at room temperature. Extensive characterization of these components shows that the majority of decoupling capacitor types and voltage regulators are not well behaved at cryogenic temperatures, asking for an ad hoc solution to stabilize the FPGA supply voltage, especially for sensitive applications. Therefore, we have designed a firmware that enforces a constant power consumption, so as to stabilize the supply voltage in the interior of the FPGA. The FPGA is powered with a supply at several meters distance, causing significant resistive voltage drop and thus fluctuations on the local supply voltage. To achieve the stabilization, the variation in digital logic speed, which directly corresponds to changes in supply voltage, is constantly measured and corrected for through a tunable oscillator farm, implemented on the FPGA. The impact of the stabilization technique is demonstrated together with a reconfigurable analog-to-digital converter (ADC), completely implemented in the FPGA fabric and operating at 15 K. The ADC performance can be improved by at most 1.5 bits (effective number of bits) thanks to the more stable supply voltage. The method is versatile and robust, enabling seamless porting to other FPGA families and configurations.
在本文中,我们展示了如何通过特殊的固件设计技术,使深亚微米现场可编程门阵列(FPGA)在极低温度下更稳定地运行。低温下的稳定性受到长电源线以及室温下常用的各种印刷电路板组件性能下降的限制。对这些组件的广泛特性分析表明,大多数去耦电容器类型和电压调节器在低温下表现不佳,这就需要一种特殊的解决方案来稳定FPGA的电源电压,特别是对于敏感应用。因此,我们设计了一种固件,强制实现恒定功耗,以稳定FPGA内部的电源电压。FPGA由数米外的电源供电,这会导致显著的电阻性电压降,进而使本地电源电压产生波动。为实现稳定,通过在FPGA上实现的可调振荡器组,不断测量并校正与电源电压变化直接对应的数字逻辑速度变化。通过一个完全在FPGA架构中实现并在15 K下运行的可重构模数转换器(ADC),展示了这种稳定技术的影响。由于电源电压更稳定,ADC性能最多可提高1.5位(有效位数)。该方法通用且稳健,能够无缝移植到其他FPGA系列和配置中。