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Nanoarchitectonics for Wide Bandgap Semiconductor Nanowires: Toward the Next Generation of Nanoelectromechanical Systems for Environmental Monitoring.

Tuan-Anh PhamAfzaal QamarToan DinhMostafa Kamal MasudMina Rais-ZadehDebbie G SeneskyYamauchi YusukeNam-Trung NguyenHoang-Phuong Phan
Published in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2020)
Semiconductor nanowires are widely considered as the building blocks that revolutionized many areas of nanosciences and nanotechnologies. The unique features in nanowires, including high electron transport, excellent mechanical robustness, large surface area, and capability to engineer their intrinsic properties, enable new classes of nanoelectromechanical systems (NEMS). Wide bandgap (WBG) semiconductors in the form of nanowires are a hot spot of research owing to the tremendous possibilities in NEMS, particularly for environmental monitoring and energy harvesting. This article presents a comprehensive overview of the recent progress on the growth, properties and applications of silicon carbide (SiC), group III-nitrides, and diamond nanowires as the materials of choice for NEMS. It begins with a snapshot on material developments and fabrication technologies, covering both bottom-up and top-down approaches. A discussion on the mechanical, electrical, optical, and thermal properties is provided detailing the fundamental physics of WBG nanowires along with their potential for NEMS. A series of sensing and electronic devices particularly for environmental monitoring is reviewed, which further extend the capability in industrial applications. The article concludes with the merits and shortcomings of environmental monitoring applications based on these classes of nanowires, providing a roadmap for future development in this fast-emerging research field.
Keyphrases
  • room temperature
  • reduced graphene oxide
  • human health
  • ionic liquid
  • gold nanoparticles
  • risk assessment
  • life cycle
  • high resolution
  • heavy metals
  • wastewater treatment
  • climate change
  • current status
  • high speed