The capacitive couplings between gate-defined quantum dots and their gates vary considerably as a function of applied gate voltages. The conversion between gate voltages and the relevant energy scales is usually performed in a regime of rather symmetric dot-lead tunnel couplings strong enough to allow direct transport measurements. Unfortunately, this standard procedure fails for weak and possibly asymmetric tunnel couplings, often the case in realistic devices. We have developed methods to determine the gate voltage to energy conversion accurately in the different regimes of dot-lead tunnel couplings and demonstrate strong variations of the conversion factors. Our concepts can easily be extended to triple quantum dots or even larger arrays
© 2018 Author(s). The interaction between electrons in arrays of electrostatically defined quantum d...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Physics, 2005.Includes bibliographica...
Few-electron states confined in quantum-dot arrays are key objects in quantum computing. The discrim...
The capacitive couplings between gate-defined quantum dots and their gates vary considerably as a fu...
9 pages, 5 figuresInternational audienceWe report low-temperature transport measurements through a d...
We study a system of two symmetrical capacitively coupled quantum dots, each coupled to its own meta...
We report on electron transport measurements of a lithographically-defined silicon double quantum do...
A quantum dot (QD) system provides various quantum physics of nanostructures. So far, many types of ...
The present thesis investigates serial quantum dot arrays of different sizes, the double quantum dot...
Spin states of the electrons and nuclei of phosphorus donors in silicon are strong candidates for qu...
This thesis is on the electronic transport properties of quantum dot systems. We investigate three i...
We introduce model calculation for the electron transport through a system consists of two serially...
We acknowledge the support from Hitachi Cambridge Laboratory and EPSRC Grant No. EP/K027018/1. A.J.F...
We investigate the linear-response conductance through a pair of coupled quantum dots. The conductan...
Semiconductor quantum dot arrays defined electrostatically in a 2D electron gas provide a scalable p...
© 2018 Author(s). The interaction between electrons in arrays of electrostatically defined quantum d...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Physics, 2005.Includes bibliographica...
Few-electron states confined in quantum-dot arrays are key objects in quantum computing. The discrim...
The capacitive couplings between gate-defined quantum dots and their gates vary considerably as a fu...
9 pages, 5 figuresInternational audienceWe report low-temperature transport measurements through a d...
We study a system of two symmetrical capacitively coupled quantum dots, each coupled to its own meta...
We report on electron transport measurements of a lithographically-defined silicon double quantum do...
A quantum dot (QD) system provides various quantum physics of nanostructures. So far, many types of ...
The present thesis investigates serial quantum dot arrays of different sizes, the double quantum dot...
Spin states of the electrons and nuclei of phosphorus donors in silicon are strong candidates for qu...
This thesis is on the electronic transport properties of quantum dot systems. We investigate three i...
We introduce model calculation for the electron transport through a system consists of two serially...
We acknowledge the support from Hitachi Cambridge Laboratory and EPSRC Grant No. EP/K027018/1. A.J.F...
We investigate the linear-response conductance through a pair of coupled quantum dots. The conductan...
Semiconductor quantum dot arrays defined electrostatically in a 2D electron gas provide a scalable p...
© 2018 Author(s). The interaction between electrons in arrays of electrostatically defined quantum d...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Physics, 2005.Includes bibliographica...
Few-electron states confined in quantum-dot arrays are key objects in quantum computing. The discrim...