19.1 A Scalable Cryo-CMOS 2-to-20GHz Digitally Intensive Controller for 4×32 Frequency Multiplexed Spin Qubits/Transmons in 22nm FinFET Technology for Quantum Computers.

ISSCC(2020)

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摘要
Quantum computers (QC), comprising qubits and a classical controller, can provide exponential speed-up in solving certain problems. Among solid-state qubits, transmons and spin-qubits are the most promising, operating « 1K. A qubit can be implemented in a physical system with two distinct energy levels representing the |0) and |1) states, e.g. the up and down spin states of an electron. The qubit states can be manipulated with microwave pulses, whose frequency f matches the energy level spacing E = hf (Fig. 19.1.1). For transmons, f ~6GHz, for spin qubits f~20GHz, with the desire to lower it in the future. Qubit operations can be represented as rotations in the Bloch sphere. The rotation axis is set by the phase of the microwave signal relative to the qubit phase, which must be tracked for coherent operations. The pulse amplitude and duration determine the rotation angle. A π-rotation is typically obtained using a 50ns Gaussian pulse for transmons and a 500ns rectangular pulse for spin qubits with powers of −60dBm and −45dBm, respectively.
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rectangular pulse,Gaussian pulse,pulse amplitude,microwave pulses,Bloch sphere,physical system,frequency multiplexed spin qubits/transmons,scalable cryo-CMOS digitally intensive controller,qubit phase,qubit operations,energy level spacing E,qubit states,distinct energy levels,solid-state qubits,classical controller,quantum computers,FinFET technology,frequency 20.0 GHz,size 22.0 nm,temperature 1.0 K,frequency 6.0 GHz,time 50.0 ns,time 500.0 ns
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