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Gerhard Fasol

Publications and source records attributed to Gerhard Fasol.

3 recordsLinked to original sources

Selective electrodeposition of nanometer scale magnetic wires

A selective electrodeposition method for the fabrication of extremely thin and long metallic and magnetic wires and other nanostructures is introduced. Growth is done on the cleaved edge of a semiconductor multilayer structure incorporating a 4 nm wide modulation doped quantum well. This conducting quantum well is connected to the negative current contact during electrodeposition. Since electrodeposition requires the neutralization of positive metal ions from the solution, deposition takes place selectively onto the edge of the quantum well, leading to the fabrication of extremely thin magnetic metal wires, which should be useful for the investigation of the limits of magnetic storage.

cond-mat.mtrl-sci

Electron--Electron Scattering in Quantum Wires and it's Possible Suppression due to Spin Effects

A microscopic picture of electron-electron pair scattering in single mode quantum wires is introduced which includes electron spin. A new source of `excess' noise for hot carriers is presented. We show that zero magnetic field `spin' splitting in quantum wires can lead to a dramatic `spin'-subband dependence of electron--electron scattering, including the possibility of strong suppression. As a consequence extremely long electron coherence lengths and new spin-related phenomena are predicted. Since electron bands in III-V semiconductor quantum wires are in general spin-split in zero applied magnetic field, these new transport effects are of general importance.

cond-mat

Spontaneous Spin-Polarization of Ballistic Electrons in Single Mode Quantum Wires due to Spin-Splitting

We show that a quantum wire device with spin splitting can work as an active spin polarizer. Hot electrons in one `spin' subband (e.g. `spin-up') may pass such a device with weak electron pair scattering, while electrons in the opposite subband (`spin-down') may have high conversion probability into the `spin-up' subband, resulting in spin polarization of a hot electron beam. Under different circumstances a hot electron beam passing through a single mode quantum wire may induce a steady state magnetization of the background electron gas in a section of the wire weakly coupled to the environment.

cond-mat