Controlling the crystallographic phase purity of III-V nanowires is notoriously difficult, yet this is essential for future nanowire devices. Reported methods for controlling nanowire phase require dopant addition, or a restricted choice of nanowire diameter, and only rarely yield a pure phase. Here we demonstrate that phase-perfect nanowires, of arbitrary diameter, can be achieved simply by tailoring basic growth parameters: temperature and V/III ratio. Phase purity is achieved without sacrificing important specifications of diameter and dopant levels. Pure zinc blende nanowires, free of twin defects, were achieved using a low growth temperature coupled with a high V/III ratio. Conversely, a high growth temperature coupled with a low V/III...
The growth of wurtzite GaAs and InAs nanowires with diameters of a few tens of nanometers with negli...
In this work we investigate the variation of the crystal structure of gold-seeded III-V nanowires wi...
The III-V nanowire structure (zinc blende or wurtzite) grown by the vapor-liquid-solid process is sh...
Controlling the crystallographic phase purity of III-V nanowires is notoriously difficult, yet this ...
Controlling the crystallographic phase purity of III-V nanowires is notoriously difficult, yet this ...
III-V nanowires (NWs) are promising for a wide range of applications, ranging from optics to electro...
The opportunity to engineer III-V nanowires in wurtzite and zinc blende crystal structure allows for...
The opportunity to engineer III–V nanowires in wurtzite and zinc blende crystal structure allows for...
We present results that provide fundamental insights on how to experimentally tailor the planar defe...
Here we demonstrate the existence of two distinct regimes for tuning crystal structure in GaAs nanow...
Achieving phase purity and control in III-V nanowires is a necessity for future nanowire-based devic...
Achieving phase purity and control in III-V nanowires is a necessity for future nanowire-based devic...
Crystal structure and defects have been shown to have a strong impact on III-V nanowire properties. ...
we present results that provide fundamental insights on how to experimentally tailor the planar defe...
A simple and potentially general means of eliminating the planar defects and phase alternations that...
The growth of wurtzite GaAs and InAs nanowires with diameters of a few tens of nanometers with negli...
In this work we investigate the variation of the crystal structure of gold-seeded III-V nanowires wi...
The III-V nanowire structure (zinc blende or wurtzite) grown by the vapor-liquid-solid process is sh...
Controlling the crystallographic phase purity of III-V nanowires is notoriously difficult, yet this ...
Controlling the crystallographic phase purity of III-V nanowires is notoriously difficult, yet this ...
III-V nanowires (NWs) are promising for a wide range of applications, ranging from optics to electro...
The opportunity to engineer III-V nanowires in wurtzite and zinc blende crystal structure allows for...
The opportunity to engineer III–V nanowires in wurtzite and zinc blende crystal structure allows for...
We present results that provide fundamental insights on how to experimentally tailor the planar defe...
Here we demonstrate the existence of two distinct regimes for tuning crystal structure in GaAs nanow...
Achieving phase purity and control in III-V nanowires is a necessity for future nanowire-based devic...
Achieving phase purity and control in III-V nanowires is a necessity for future nanowire-based devic...
Crystal structure and defects have been shown to have a strong impact on III-V nanowire properties. ...
we present results that provide fundamental insights on how to experimentally tailor the planar defe...
A simple and potentially general means of eliminating the planar defects and phase alternations that...
The growth of wurtzite GaAs and InAs nanowires with diameters of a few tens of nanometers with negli...
In this work we investigate the variation of the crystal structure of gold-seeded III-V nanowires wi...
The III-V nanowire structure (zinc blende or wurtzite) grown by the vapor-liquid-solid process is sh...