可扩展性
计算机科学
约瑟夫森效应
晶体管
电子工程
比较器
量化(信号处理)
超导电性
逻辑门
量子计算机
转换器
电压
电气工程
电路设计
数码产品
闪存
物理
块(置换群论)
电子线路
光电子学
量子
低温学
偏压
电力电子
现场可编程门阵列
超导磁体
库仑阻塞
CMOS芯片
快速单通量量子
模数转换器
纳米电子学
作者
Md Mazharul Islam,Connor A. Good,Diego Ferrer,Juan P. Mendez,Denis Mamaluy,Wei Pan,Kathleen E. Hamilton,Ahmedullah Aziz
摘要
The increasing demand for cryogenic electronics in superconducting and quantum computing systems calls for ultra-energy-efficient data conversion architectures that remain functional at deep cryogenic temperatures. In this work, we present the first design of a voltage-controlled superconducting flash analog-to-digital converter (ADC) based on a voltage-controlled quantum-enhanced Josephson junction field-effect transistor (JJFET). Exploiting its strong gate tunability and transistor-like behavior, the JJFET offers a scalable alternative to conventional current-controlled superconducting devices while aligning naturally with CMOS-style design methodologies. Building on our previously developed Verilog-A compact model calibrated to experimental data, we design and simulate a three-bit JJFET-based flash ADC targeted for integration within cryogenic control and readout circuitry in quantum computing. The core comparator block is realized through careful bias current selection and augmented with a three-terminal nanocryotron to precisely define reference voltages. Cascaded JJFET comparators ensure robust voltage gain, cascadability, and logic-level restoration across stages. Simulation results demonstrate accurate quantization behavior with ultra-low power dissipation, underscoring the feasibility of voltage-driven superconducting mixed-signal circuits. This work establishes a critical step toward unifying superconducting logic and data conversion, paving the way for scalable cryogenic architectures in quantum–classical co-processors, low-power artificial intelligence accelerators, and next-generation energy-constrained computing platforms.
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