一种用于量子计算机中量子比特控制的完全集成的冷冻cmos SoC,能够在Intel 22nm FFL FinFET技术中进行自旋量子比特的状态操纵、读出和高速门脉冲

Jong-Seok Park, Sushil Subramanian, L. Lampert, T. Mladenov, Ilya V. Klotchkov, Dileep Kurian, E. Juárez-Hernández, Brando Perez Esparza, S. Kale, K. T. A. Beevi, S. Premaratne, T. Watson, Satoshi Suzuki, Mustafijur Rahman, Jaykant Timbadiya, Saksham Soni, S. Pellerano
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引用次数: 36

摘要

量子计算有望以指数级的速度解决某些经典计算机难以解决的复杂问题。然而,可能需要数千或数百万个量子比特来解决有用的问题。需要高精度和低噪声的电信号来操纵和读取量子位的状态并控制量子位与量子位之间的相互作用。目前的系统使用室温电子设备,其中有许多同轴电缆连接到稀释冰箱内的量子比特芯片。由于外形因素、成本、功耗和冰箱的热负荷,这种方法不能扩展到大量量子位。为了解决这一挑战,提出了一种低温量子比特控制器[1]。低温脉冲调制器的第一个集成实现已经在[2]中提出,展示了操纵(驱动)超导量子比特状态的能力。[3]中的工作扩展了控制器的能力,具有3个主要特征:频率复用以减少每个量子位的RF电缆数量,任意I/Q脉冲生成以提高控制保真度,以及具有集成指令集的数字密集型架构,以实现现有量子控制堆栈的集成。这项工作通过集成读取量子位状态和产生驱动、读出、2量子位操作和量子位表征所需的电压脉冲的能力,进一步推进了现有技术。该SoC可以通过单个RF线的频率复用驱动多达16个自旋量子位,同时读取多达6个量子位的状态,并控制多达22个门电位。SoC还集成了$\mu$控制器,以提高实现控制指令集的灵活性。提出的低温控制器可以取代目前传统解决方案中使用的所有高速控制电子设备,为可扩展的量子计算机铺平道路。
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A Fully Integrated Cryo-CMOS SoC for Qubit Control in Quantum Computers Capable of State Manipulation, Readout and High-Speed Gate Pulsing of Spin Qubits in Intel 22nm FFL FinFET Technology
Quantum computing promises exponential speed-up in solving certain complex problems that would be intractable by classical computers. However, thousands or millions of qubits might be required to solve useful problems. High-precision and low-noise electrical signals are required to manipulate and read the state of a qubit and to control qubit-to-qubit interactions. Current systems use room temperature electronics with many coax cables routed to the qubit chip inside a dilution refrigerator. This approach does not scale to large number of qubits, due to form factor, cost, power consumption and thermal load to the fridge. To address this challenge, a cryogenic qubit controller has been proposed [1]. The first integrated implementation of a cryogenic pulse modulator has been presented in [2], demonstrating the capability of manipulating (drive) the state of superconducting qubits. The work in [3] extends the capability of the controller with 3 main features: frequency-multiplexing to reduce the number of RF cables per qubit, an arbitrary I/Q pulse generation for improved control fidelity and a digitally-intensive architecture with integrated instruction set to enable integration in existing quantum control stacks. This work further advances the prior art by integrating the capability of reading the qubit state and generating the voltage pulses required for drive, readout, 2-qubit operations and qubit characterization. The SoC can drive up to 16 spin qubits by frequency multiplexing over a single RF line, read the state of up to 6 qubits simultaneously and control up to 22 gate potentials. The SoC also integrates a $\mu$-controller for increased flexibility in implementing the control instruction set. The proposed cryogenic controller can replace all the high-speed control electronics used in conventional solutions today, paving the way towards scalable quantum computers.
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