English

Radio-frequency C-V measurements with sub-attofarad sensitivity

Mesoscale and Nanoscale Physics 2022-10-04 v1 Applied Physics

Abstract

We demonstrate the use of radio-frequency (rf) resonators to measure the capacitance of nano-scale semiconducting devices in field-effect transistor configurations. The rf resonator is attached to the gate or the lead of the device. Consequently, tuning the carrier density in the conducting channel of the device affects the resonance frequency, quantitatively reflecting its capacitance. We test the measurement method on InSb and InAs nanowires at dilution-refrigerator temperatures. The measured capacitances are consistent with those inferred from the periodicity of the Coulomb blockade of quantum dots realized in the same devices. In an implementation of the resonator using an off-chip superconducting spiral inductor we find sensitivity values reaching down to 75~zF/\sqHz\sqHz at 1~kHz measurement bandwidth, and noise down to 0.45~aF at 1~Hz bandwidth. We estimate the sensitivity of the method for a number of other implementations. In particular we predict typical sensitivity of about 40~zF/\sqHz\sqHz at room temperature with a resonator comprised of off-the-shelf components. Of several proposed applications, we demonstrate two: the capacitance measurement of several identical 80~nm-wide gates with a single resonator, and the field-effect mobility measurement of an individual nanowire with the gate capacitance measured in-situ.

Keywords

Cite

@article{arxiv.2110.03257,
  title  = {Radio-frequency C-V measurements with sub-attofarad sensitivity},
  author = {Filip K. Malinowski and Lin Han and Damaz de Jong and Ji-Yin Wang and Christian G. Prosko and Ghada Badawy and Sasa Gazibegovic and Yu Liu and Peter Krogstrup and Erik P. A. M. Bakkers and Leo P. Kouwenhoven and Jonne V. Koski},
  journal= {arXiv preprint arXiv:2110.03257},
  year   = {2022}
}
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