TY - JOUR
T1 - Bloch's oscillations in quantum circuits with charge discreteness
AU - Flores, J. C.
AU - Lazo, E.
PY - 2005/11
Y1 - 2005/11
N2 - We consider the effect of charge discreteness in a quantum circuit with inductance L. The inductance is pierced by a time-depending external magnetic field, which creates a time-dependent magnetic flux φext(t). When the external magnetic flux varies linearly with time, the induced current in the inductance oscillates with a frequency proportional to the flux variation and charge discreteness. This phenomenon is equivalent to well-known Bloch's oscillation hi crystal or periodic superlattices heterostructures. In fact, formally, the charge discreteness plays the role of a lattice constant. The same phenomenon occurs when the flux variations are replaced by a (constant) electromotive force. We expect this phenomena to be realized in micrometer sized solid-state systems.
AB - We consider the effect of charge discreteness in a quantum circuit with inductance L. The inductance is pierced by a time-depending external magnetic field, which creates a time-dependent magnetic flux φext(t). When the external magnetic flux varies linearly with time, the induced current in the inductance oscillates with a frequency proportional to the flux variation and charge discreteness. This phenomenon is equivalent to well-known Bloch's oscillation hi crystal or periodic superlattices heterostructures. In fact, formally, the charge discreteness plays the role of a lattice constant. The same phenomenon occurs when the flux variations are replaced by a (constant) electromotive force. We expect this phenomena to be realized in micrometer sized solid-state systems.
KW - Circuits theory
KW - Electronics circuits
KW - Quantum mechanics
KW - Quantum transport process
UR - https://www.scopus.com/pages/publications/28444449873
U2 - 10.1109/TNANO.2005.858604
DO - 10.1109/TNANO.2005.858604
M3 - Article
AN - SCOPUS:28444449873
SN - 1536-125X
VL - 4
SP - 688
EP - 689
JO - IEEE Transactions on Nanotechnology
JF - IEEE Transactions on Nanotechnology
IS - 6
ER -