Single-charge occupation in ambipolar quantum dots
arXiv:2001.05045 · doi:10.1103/PhysRevB.101.201301
Abstract
We demonstrate single-charge occupation of ambipolar quantum dots in silicon via charge sensing. We have fabricated ambipolar quantum dot (QD) devices in a silicon metal-oxide-semiconductor heterostructure comprising a single-electron transistor next to a single-hole transistor. Both QDs can be tuned to simultaneously sense charge transitions of the other. We further detect the few-electron and few-hole regimes in the QDs of our ambipolar device by active charge sensing.
13 pages, 4 figures
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Cited by in corpus (6)
- Particle-hole symmetry protects spin-valley blockade in graphene quantum dots
- A singlet-triplet hole-spin qubit in MOS silicon
- Charge-noise induced dephasing in silicon hole-spin qubits
- Dispersive readout of reconfigurable ambipolar quantum dots in a silicon-on-insulator nanowire
- Combining n-MOS Charge Sensing with p-MOS Silicon Hole Double Quantum Dots in a CMOS platform
- An ambipolar single-charge pump in silicon