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Growth Mechanisms and Novel Properties of Silicon Nanostructures from Quantum-Mechanical Calculations / by Rui-Qin Zhang.

Por: Colaborador(es): Tipo de material: TextoTextoSeries SpringerBriefs in Molecular ScienceEditor: Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer, 2014Descripción: viii, 66 páginas 31 ilustraciones, 15 ilustraciones en color. recurso en líneaTipo de contenido:
  • texto
Tipo de medio:
  • computadora
Tipo de portador:
  • recurso en línea
ISBN:
  • 9783642409059
Formatos físicos adicionales: Edición impresa:: Sin títuloClasificación LoC:
  • QD450-801
Recursos en línea:
Contenidos:
Introduction -- Growth mechanism of silicon nanowires -- Stability of silicon nanostructures -- Novel electronic properties of silicon nanostructures -- Summary and remarks.
Resumen: In this volume, Prof. Zhang reviews the systematic theoretical studies in his group on the growth mechanisms and properties of silicon quantum dots, nanotubes and nanowires, including: mechanisms of oxide-assisted growth of silicon nanowires, energetic stability of pristine silicon nanowires and nanotubes, thermal stability of hydrogen terminated silicon nanostructures, size-dependent oxidation of hydrogen terminated silicon nanostructures, excited-state relaxation of hydrogen terminated silicon nanodots, and direct-indirect energy band transitions of silicon nanowires and sheets by surface engineering and straining. He also discusses the potential applications of these findings. This book will mainly benefit those members of the scientific and research community working in nanoscience, surface science, nanomaterials and related fields.
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Introduction -- Growth mechanism of silicon nanowires -- Stability of silicon nanostructures -- Novel electronic properties of silicon nanostructures -- Summary and remarks.

In this volume, Prof. Zhang reviews the systematic theoretical studies in his group on the growth mechanisms and properties of silicon quantum dots, nanotubes and nanowires, including: mechanisms of oxide-assisted growth of silicon nanowires, energetic stability of pristine silicon nanowires and nanotubes, thermal stability of hydrogen terminated silicon nanostructures, size-dependent oxidation of hydrogen terminated silicon nanostructures, excited-state relaxation of hydrogen terminated silicon nanodots, and direct-indirect energy band transitions of silicon nanowires and sheets by surface engineering and straining. He also discusses the potential applications of these findings. This book will mainly benefit those members of the scientific and research community working in nanoscience, surface science, nanomaterials and related fields.

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