Research into self-assembled semiconductor quantum dots (QDs) has helped advance numerous optoelectronic applications, ranging from solid-state lighting to photodetectors. By carefully controlling molecular beam epitaxy (MBE) growth parameters, we can readily tune QD light absorption and emission properties to access a broad portion of the electromagnetic spectrum. Although this field is now sufficiently mature that QDs are found in consumer electronics, research efforts continue to expand into new areas. By manipulating MBE growth conditions and exploring new combinations of materials, substrate orientations, and the sign of strain, a wealth of opportunities exist for synthesizing novel QD nanostructures with hitherto unavailable propertie...
Self-assembled quantum dots (QDs) have been grown with good reproducibility by molecular beam epitax...
Quantum dots (QDs) are a class of semiconductor structure widely studied for their unique electronic...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....
Research into self-assembled semiconductor quantum dots (QDs) has helped advance numerous optoelectr...
Research into self-assembled semiconductor quantum dots (QDs) has helped advance numerous optoelectr...
This paper discusses the growth and the properties of semiconductor nanostructures based on self-ass...
This paper discusses the growth and the properties of semiconductor nanostructures based on self-ass...
Low dimensional structures (LDS) form a major new branch of physics research. They are semiconductor...
III-V self-assembled quantum dots (QDs) and quantum dashes (Q-dashes) grown by epitaxy have numerous...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
In recent years, the field of self-assembled quantum dots has shown great promise for nanoscale appl...
Self-assembled quantum dots (QDs) have been grown with good reproducibility by molecular beam epitax...
Quantum dots (QDs) are a class of semiconductor structure widely studied for their unique electronic...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....
Research into self-assembled semiconductor quantum dots (QDs) has helped advance numerous optoelectr...
Research into self-assembled semiconductor quantum dots (QDs) has helped advance numerous optoelectr...
This paper discusses the growth and the properties of semiconductor nanostructures based on self-ass...
This paper discusses the growth and the properties of semiconductor nanostructures based on self-ass...
Low dimensional structures (LDS) form a major new branch of physics research. They are semiconductor...
III-V self-assembled quantum dots (QDs) and quantum dashes (Q-dashes) grown by epitaxy have numerous...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (...
In recent years, the field of self-assembled quantum dots has shown great promise for nanoscale appl...
Self-assembled quantum dots (QDs) have been grown with good reproducibility by molecular beam epitax...
Quantum dots (QDs) are a class of semiconductor structure widely studied for their unique electronic...
Discovered recently, tensile-strained quantum dots are optically active, defect-free nanostructures....