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On-wire bandgap engineering via a magnetic-pulled CVD approach and optoelectronic applications of one-dimensional nanostructures

  • Xia Shen
  • , Pu Li
  • , Pengfei Guo*
  • , Kin Man Yu*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Since the emergence of one-dimensional nanostructures, in particular the bandgap-graded semiconductor nanowires/ribbons or heterostructures, lots of attentions have been devoted to unraveling their intriguing properties and finding applications for future developments in optical communications and integrated optoelectronic devices. In particular, the ability to modulate the bandgap along a single nanostructure greatly enhances their functionalities in optoelectronics, and hence these studies are essential to pave the way for future high-integrated devices and circuits. Herein, we focus on a brief review on recent advances about the synthesis through a magnetic-pulled chemical vapor deposition approach, crystal structure and the unique optical and electronic properties of on-nanostructures semiconductors, including axial nanowire heterostructures, asymmetrical/symmetric bandgap gradient nanowires, lateral heterostructure nanoribbons, lateral bandgap graded ribbons. Moreover, recent developments in applications using low-dimensional bandgap modulated structures, especially in bandgap-graded nanowires and heterostructures, are summarized, including multicolor lasers, waveguides, white-light sources, photodetectors, and spectrometers, where the main strategies and unique features are addressed. Finally, future outlook and perspectives for the current challenges and the future opportunities of one-dimensional nanostructures with bandgap engineering are discussed to provide a roadmap future development in the field.
Original languageEnglish
Article number432002
JournalNanotechnology
Volume33
Issue number43
Online published1 Aug 2022
DOIs
Publication statusPublished - 22 Oct 2022

Research Keywords

  • semiconductor nanostructures
  • chemical vapor deposition
  • bandgap modulation
  • nanophotonics
  • optoelectronics
  • AXIAL HETEROSTRUCTURE NANOWIRES
  • HALIDE PEROVSKITES CSPBX3
  • LIGHT-EMITTING-DIODES
  • SOLVENT VAPOR GROWTH
  • HIGH-PERFORMANCE
  • SEMICONDUCTOR NANOWIRES
  • INFRARED PHOTODETECTORS
  • QUANTUM-EFFICIENCY
  • HETEROJUNCTION
  • EMISSION

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