Indium phosphide nanowires as building blocks for nanoscale electronic and optoelectronic devices
Top Cited Papers
- 1 January 2001
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 409 (6816) , 66-69
- https://doi.org/10.1038/35051047
Abstract
Nanowires and nanotubes carry charge and excitons efficiently, and are therefore potentially ideal building blocks for nanoscale electronics and optoelectronics1,2. Carbon nanotubes have already been exploited in devices such as field-effect3,4 and single-electron5,6 transistors, but the practical utility of nanotube components for building electronic circuits is limited, as it is not yet possible to selectively grow semiconducting or metallic nanotubes7,8. Here we report the assembly of functional nanoscale devices from indium phosphide nanowires, the electrical properties of which are controlled by selective doping. Gate-voltage-dependent transport measurements demonstrate that the nanowires can be predictably synthesized as either n- or p-type. These doped nanowires function as nanoscale field-effect transistors, and can be assembled into crossed-wire p–n junctions that exhibit rectifying behaviour. Significantly, the p–n junctions emit light strongly and are perhaps the smallest light-emitting diodes that have yet been made. Finally, we show that electric-field-directed assembly can be used to create highly integrated device arrays from nanowire building blocks.Keywords
This publication has 19 references indexed in Scilit:
- General Synthesis of Compound Semiconductor NanowiresAdvanced Materials, 2000
- Carbon Nanotubes as Molecular Quantum WiresPhysics Today, 1999
- Chemistry and Physics in One Dimension: Synthesis and Properties of Nanowires and NanotubesAccounts of Chemical Research, 1999
- Single- and multi-wall carbon nanotube field-effect transistorsApplied Physics Letters, 1998
- Room-temperature transistor based on a single carbon nanotubeNature, 1998
- A Laser Ablation Method for the Synthesis of Crystalline Semiconductor NanowiresScience, 1998
- Electronic structure of atomically resolved carbon nanotubesNature, 1998
- Atomic structure and electronic properties of single-walled carbon nanotubesNature, 1998
- Individual single-wall carbon nanotubes as quantum wiresNature, 1997
- Single-Electron Transport in Ropes of Carbon NanotubesScience, 1997