Valley blockade in a silicon double quantum dot
arXiv:1607.06107 · doi:10.1103/PhysRevB.96.205302
Abstract
Electrical transport in double quantum dots (DQDs) illuminates many interesting features of the dots' carrier states. Recent advances in silicon quantum information technologies have renewed interest in the valley states of electrons confined in silicon. Here we show measurements of DC transport through a mesa-etched silicon double quantum dot. Comparing bias triangles (i.e., regions of allowed current in DQDs) at positive and negative bias voltages we find a systematic asymmetry in the size of the bias triangles at the two bias polarities. Asymmetries of this nature are associated with blocking of tunneling events due to the occupation of a metastable state. Several features of our data lead us to conclude that the states involved are not simple spin states. Rather, we develop a model based on selective filling of valley states in the DQD that is consistent with all of the qualitative features of our data.
6 pages, 6 figures
References in corpus (9)
- An addressable quantum dot qubit with fault-tolerant control fidelity
- Valley Polarization in Si(100) at Zero Magnetic Field
- Suppression of spin relaxation in an InAs nanowire double quantum dot
- Pauli-Spin-Blockade Transport through a Silicon Double Quantum Dot
- Spin-orbit coupling and operation of multi-valley spin qubits
- Measurement of valley splitting in high-symmetry Si/SiGe quantum dots
- Spin filling of valley-orbit states in a silicon quantum dot
- An electrically driven spin qubit based on valley mixing
- A new Regime of Pauli-Spin Blockade