Single-electron transistors in electromagnetic environments

Type: Article

Publication Date: 2004-03-12

Citations: 11

DOI: https://doi.org/10.1103/physrevb.69.094509

Abstract

The current--voltage $(I--V)$ characteristics of single-electron transistors (SETs) have been measured in various electromagnetic environments. Some SETs were biased with one-dimensional arrays of dc superconducting quantum interference devices (SQUIDs). The purpose was to provide the SETs with a magnetic-field-tunable environment in the superconducting state, and a high-impedance environment in the normal state. The comparison of SETs with SQUID arrays and those without arrays in the normal state confirmed that the effective charging energy of SETs in the normal state becomes larger in the high-impedance environment, as expected theoretically. In SETs with SQUID arrays in the superconducting state, as the zero-bias resistance of the SQUID arrays was increased to be much larger than the quantum resistance ${R}_{K}\ensuremath{\equiv}{h/e}^{2}\ensuremath{\approx}26\mathrm{k}\ensuremath{\Omega},$ a sharp Coulomb blockade was induced, and the current modulation by the gate-induced charge was changed from e periodic to $2e$ periodic at a bias point $0<|V|<2{\ensuremath{\Delta}}_{0}/e,$ where ${\ensuremath{\Delta}}_{0}$ is the superconducting energy gap. The author discusses the Coulomb blockade and its dependence on the gate-induced charge in terms of the single Josephson junction with gate-tunable junction capacitance.

Locations

  • arXiv (Cornell University) - View - PDF
  • DataCite API - View
  • Physical Review B - View

Similar Works

Action Title Year Authors
+ PDF Chat Quantum effects in small-capacitance single Josephson junctions 2003 Michio Watanabe
David B. Haviland
+ Small-Capacitance Josephson Junctions: One-Dimensional Arrays and Single Junctions 2003 Michio Watanabe
David B. Haviland
+ PDF Chat Superconducting Quantum Interference Single-Electron Transistor 2016 Emanuele Enrico
Francesco Giazotto
+ PDF Chat Gate Tunable Josephson Diode Effect in Josephson Junctions made from InAs Nanosheets 2025 Shili Yan
Yi Luo
Haitian Su
Han Gao
Xingjun Wu
Dong Pan
Jianhua Zhao
Ji‐Yin Wang
H. Q. Xu
+ PDF Chat Coulomb Blockade and Coherent Single-Cooper-Pair Tunneling in Single Josephson Junctions 2001 Michio Watanabe
David B. Haviland
+ Frequency-Phase-Locking Mechanism inside DC SQUIDs and The Analytical Expression of Current-Voltage Characteristics 2021 Yongliang Wang
+ PDF Chat Frequency-Phase-Locking Mechanism Inside Dc Squids and the Analytical Expression of Current-Voltage Characteristics 2023 Yongliang Wang
+ A general flux-Based Circuit Theory for Superconducting Josephson Junction Circuits 2023 Yongliang Wang
+ Experimental evidences of a current-biased Josephson junction device can be worked as a macroscopic "Boson" or "Fermion" and the combination 2023 P. H. Ouyang
Shiyang He
Y. Z. Wang
Y. Q. Chai
Jia Xin He
Hung-Chi Chang
L. F. Wei
+ The effect of bias current configuration on the performance of SQUID arrays 2023 M. A. Galí Labarias
K. -H. Muller
E. E. Mitchell
+ PDF Chat Supercurrent, Multiple Andreev Reflections and Shapiro Steps in InAs Nanosheet Josephson Junctions 2023 Shili Yan
Haitian Su
Dong Pan
Weijie Li
Zhaozheng Lyu
Mo Chen
Xingjun Wu
Li Lü
Jianhua Zhao
Ji‐Yin Wang
+ Supercurrent, Multiple Andreev Reflections and Shapiro Steps in InAs Nanosheet Josephson Junctions 2023 Shili Yan
Haitian Su
Dong Pan
Weijie Li
Zhaozheng Lyu
Mo Chen
Xingjun Wu
Lü Li
Jianhua Zhao
Ji‐Yin Wang
+ Gate-control of superconducting current: mechanisms, parameters and technological potential 2023 Leon Ruf
Claudio Puglia
Giorgio De Simoni
Yurii P. Ivanov
Tosson Elalaily
François Joint
Martin Berke
Jennifer Koch
Andrea Iorio
Sara Khorshidian
+ PDF Chat Field-effect control of metallic superconducting systems 2019 Federico Paolucci
Giorgio De Simoni
Paolo Solinas
Elia Strambini
Claudio Puglia
Nadia Ligato
Francesco Giazotto
+ PDF Chat Design of Josephson diode based on magnetic impurity 2023 Yufei Sun
Yue Mao
Qing-Feng Sun
+ PDF Chat Gate control of superconducting current: Mechanisms, parameters, and technological potential 2024 Leon Ruf
Claudio Puglia
Tosson Elalaily
Giorgio De Simoni
François Joint
M. Berke
Jonathan A. Koch
A. Iorio
Sara Khorshidian
Péter Makk
+ PDF Chat π junction transition in InAs self-assembled quantum dot coupled with SQUID 2011 Sunmi Kim
R. Ishiguro
M. Kamio
Y. Doda
Eiichiro Watanabe
Daiju Tsuya
Kenji Shibata
Kazuhiko Hirakawa
Hideaki Takayanagi
+ PDF Chat An Electromagnetic-Flux-Distribution Model for Analyses of Superconducting Josephson Junction Circuits and Quantum Phase-Slip Junction Circuits 2022 Yongliang Wang
+ Magnetic-Flux-Flow Diagrams for Design and Analysis of Josephson Junction Circuits 2022 Yongliang Wang
+ PDF Chat Magnetic-Flux-Flow Diagrams for Design and Analysis of Josephson Junction Circuits 2023 Yongliang Wang