Single-pulse laser interference is applied to a Molecular Beam Epitaxy growth chamber to achieve in-situ patterning during the growth of III-V materials, with a focus on producing arrays of III-V quantum dots. We will describe the construction and characterization of the interference system as well as the in-situ patterning results. Pulsed laser interference is shown to strongly interact with the growing surface to produce periodic nanoscale features such as holes and islands, the nature of which is dependent on the local surface energy distribution. We describe a mechanism for the formation of these features in terms of surface diffusion under the influence of the periodic thermal gradient induced by the interference pattern. Nanoislands f...
Laser direct patterning by multi-beam interference can create structures in the sub-μm regime on a w...
Quantum dots (QDs) grown on semiconductors surfaces are actually the main researchers' interest for ...
High resolution direct laser interference patterning allows creation of submicron periodic features ...
We report the fabrication of periodic one- and two-dimensional nanostructures on semiconductor surfa...
Precisely ordered arrays of InAs quantum dots are formed on a nanoisland-structured GaAs (100) surfa...
Laser interference lithography is used to directly pattern the growing surface during molecular beam...
Laser interference has been widely used to produce one-dimensional gratings and more recently has sh...
We demonstrate the growth and surface characterization of laterally ordered arrays of InAs quantum d...
Laser interference has been widely used to produce one-dimensional gratings and more recently has sh...
Surface patterning engineering techniques are essential to fabricate advanced topographies that can ...
We demonstrate an effective method for fabricating large area periodic two-dimensional semiconductor...
InAs/GaAs quantum dots (QDs) grown by molecular beam epitaxy were subjected to in situirradiation us...
Fabrication of two- and three-dimensional (2D and 3D) structures in the micro- and nano-range allows...
Periodic micro and nano structures are required for a variety of different products in micro optics,...
Surface nano-texturing can play an important role for efficiency enhancement of light emission and a...
Laser direct patterning by multi-beam interference can create structures in the sub-μm regime on a w...
Quantum dots (QDs) grown on semiconductors surfaces are actually the main researchers' interest for ...
High resolution direct laser interference patterning allows creation of submicron periodic features ...
We report the fabrication of periodic one- and two-dimensional nanostructures on semiconductor surfa...
Precisely ordered arrays of InAs quantum dots are formed on a nanoisland-structured GaAs (100) surfa...
Laser interference lithography is used to directly pattern the growing surface during molecular beam...
Laser interference has been widely used to produce one-dimensional gratings and more recently has sh...
We demonstrate the growth and surface characterization of laterally ordered arrays of InAs quantum d...
Laser interference has been widely used to produce one-dimensional gratings and more recently has sh...
Surface patterning engineering techniques are essential to fabricate advanced topographies that can ...
We demonstrate an effective method for fabricating large area periodic two-dimensional semiconductor...
InAs/GaAs quantum dots (QDs) grown by molecular beam epitaxy were subjected to in situirradiation us...
Fabrication of two- and three-dimensional (2D and 3D) structures in the micro- and nano-range allows...
Periodic micro and nano structures are required for a variety of different products in micro optics,...
Surface nano-texturing can play an important role for efficiency enhancement of light emission and a...
Laser direct patterning by multi-beam interference can create structures in the sub-μm regime on a w...
Quantum dots (QDs) grown on semiconductors surfaces are actually the main researchers' interest for ...
High resolution direct laser interference patterning allows creation of submicron periodic features ...