We report a 'superlattice' growth method to produce well-aligned magnetic MnGe nanocolumns and nanowells by using low-temperature molecular- beam epitaxy. Both structural and magnetic properties show strong evidence of Mn5Ge3 precipitates and lattice-coherent nanostructures with different blocking temperatures. Magnetotransport measurements reveal positive and negative magnetoresistances for the nanowells and nanocolumns, respectively. This distinction can be explained by different spin scattering mechanisms under magnetic fields. Our results suggest a new growth strategy to achieve reproducible MnGe nanostructures, which facilitates the development of Ge-based spintronics and magnetoelectronics devices
Reflexion high-energy electron diffraction (RHEED), transmission electron microscopy (TEM) along wit...
Structural properties of MnxGe1-x films grown by molecular beam epitaxy (MBE) have been investigated...
Magnetic semiconductors have attracted extensive attention due to their novel physical properties as...
Structural and magnetic characterizations have been combined to investigate the growthkinetics of Ge...
scale down in the feature size. However, power dissipation per unit area and variability are among t...
International audienceWe investigated the structural and magnetic properties of MnxGe1−x, with 0.02&...
International audienceThe emerging field of spintronics would be dramatically boosted if room-temper...
In this work, we investigated the magnetic and structural properties of isolated Mn5Ge3 nanoparticle...
While achieving high Curie temperatures (above room temperature) in diluted magnetic semiconductors ...
Self-assembled semiconducting nanowires (NW) are promising candidates to design and to fabricate new...
FexGe1-x superlattices with two types of nanostructures, i.e. nanodots and nanolayers, were successf...
Magnetically doped Si and Ge nanowires have potential application in future nanowire spin-based devi...
Under defined growth conditions ferromagnetic hexagonal Mn5Ge3 precipitates are formed in cubic Ge1-...
10 pages 2 colonnes revTex formattedWe report on the structural and magnetic properties of thin Ge(1...
The growth of magnetic semiconductors with Curie temperature above room temperature is one of the ma...
Reflexion high-energy electron diffraction (RHEED), transmission electron microscopy (TEM) along wit...
Structural properties of MnxGe1-x films grown by molecular beam epitaxy (MBE) have been investigated...
Magnetic semiconductors have attracted extensive attention due to their novel physical properties as...
Structural and magnetic characterizations have been combined to investigate the growthkinetics of Ge...
scale down in the feature size. However, power dissipation per unit area and variability are among t...
International audienceWe investigated the structural and magnetic properties of MnxGe1−x, with 0.02&...
International audienceThe emerging field of spintronics would be dramatically boosted if room-temper...
In this work, we investigated the magnetic and structural properties of isolated Mn5Ge3 nanoparticle...
While achieving high Curie temperatures (above room temperature) in diluted magnetic semiconductors ...
Self-assembled semiconducting nanowires (NW) are promising candidates to design and to fabricate new...
FexGe1-x superlattices with two types of nanostructures, i.e. nanodots and nanolayers, were successf...
Magnetically doped Si and Ge nanowires have potential application in future nanowire spin-based devi...
Under defined growth conditions ferromagnetic hexagonal Mn5Ge3 precipitates are formed in cubic Ge1-...
10 pages 2 colonnes revTex formattedWe report on the structural and magnetic properties of thin Ge(1...
The growth of magnetic semiconductors with Curie temperature above room temperature is one of the ma...
Reflexion high-energy electron diffraction (RHEED), transmission electron microscopy (TEM) along wit...
Structural properties of MnxGe1-x films grown by molecular beam epitaxy (MBE) have been investigated...
Magnetic semiconductors have attracted extensive attention due to their novel physical properties as...