Towards single-electron metrology
arXiv:cond-mat/9908219 · doi:10.1142/S0217979299002587
Abstract
We review the status of the understanding of single-electron transport (SET) devices with respect to their applicability in metrology. Their envisioned role as the basis of a high-precision electrical standard is outlined and is discussed in the context of other standards. The operation principles of single electron transistors, turnstiles and pumps are explained and the fundamental limits of these devices are discussed in detail. We describe the various physical mechanisms that influence the device uncertainty and review the analytical and numerical methods needed to calculate the intrinsic uncertainty and to optimise the fabrication and operation parameters. Recent experimental results are evaluated and compared with theoretical predictions. Although there are discrepancies between theory and experiments, the intrinsic uncertainty is already small enough to start preparing for the first SET-based metrological applications.
39 pages, 14 figures. Review paper to be published in International Journal of Modern Physics B
Cited by in corpus (10)
- Current measurement by real-time counting of single electrons
- Non-adiabatic quantized charge pumping with tunable-barrier quantum dots: a review of current progress
- Roadmap on quantum nanotechnologies
- Roadmap for gallium arsenide spin qubits
- The single electron R-pump: first experiment
- Non-adiabaticity and single-electron transport driven by surface acoustic waves
- Accuracy of the quantum capacitor as a single-electron source
- Enhanced quantized current driven by surface acoustic waves
- Transporting and manipulating single electrons in surface-acoustic-wave minima
- Imaging asymmetric Coulomb blockade phenomena across metallic nanoislands