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Radio-frequency reflectometry of a quantum dot using an ultra-low-noise SQUID amplifier

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arxiv 1810.05767 v2 pith:DMN6NPDU submitted 2018-10-13 quant-ph cond-mat.mes-hallphysics.app-phphysics.ins-det

Radio-frequency reflectometry of a quantum dot using an ultra-low-noise SQUID amplifier

classification quant-ph cond-mat.mes-hallphysics.app-phphysics.ins-det
keywords quantumamplifiercapacitancereflectometrysensitivitysquidqubitradio-frequency
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Fault-tolerant spin-based quantum computers will require fast and accurate qubit readout. This can be achieved using radio-frequency reflectometry given sufficient sensitivity to the change in quantum capacitance associated with the qubit states. Here, we demonstrate a 23-fold improvement in capacitance sensitivity by supplementing a cryogenic semiconductor amplifier with a SQUID preamplifier. The SQUID amplifier operates at a frequency near 200 MHz and achieves a noise temperature below 600 mK when integrated into a reflectometry circuit, which is within a factor 120 of the quantum limit. It enables a record sensitivity to capacitance of 0.07 aF/\sqrt{Hz}. The setup is used to acquire charge stability diagrams of a gate-defined double quantum dot in a short time with a signal-to-noise ration of about 38 in 1 microsecond of integration time.

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