Amanote Research
Register
Sign In
Low-Temperature in Situ Large Strain Plasticity of Ceramic SiC Nanowires and Its Atomic-Scale Mechanism
doi 10.1021/nl0627689.s001
Full Text
Open PDF
Abstract
Available in
full text
Date
Unknown
Authors
Unknown
Publisher
American Chemical Society (ACS)
Related search
Low-Temperature Plasticity of Olivine Revisited With in Situ TEM Nanomechanical Testing
Science advances
Multidisciplinary
Tailoring Strain and Morphology of Core–Shell SiGe Nanowires by Low-Temperature Ge Condensation
Nano Letters
Materials Science
Condensed Matter Physics
Mechanical Engineering
Nanoscience
Bioengineering
Nanotechnology
Chemistry
In-Situ Investigation of Plasticity at Nano-Scale
Structural Coloring in Large Scale Core–Shell Nanowires
Nano Letters
Materials Science
Condensed Matter Physics
Mechanical Engineering
Nanoscience
Bioengineering
Nanotechnology
Chemistry
Nonstoichiometric Low-Temperature Grown GaAs Nanowires
Nano Letters
Materials Science
Condensed Matter Physics
Mechanical Engineering
Nanoscience
Bioengineering
Nanotechnology
Chemistry
Dynamic Observation of in Situ Sintering of SiC Crystals at Near Atomic Resolution
Materials Transactions, JIM
Large-Scale Synthesis of Uniform Nickel Nanowires and Their Characterisation
Journal of Experimental Nanoscience
Materials Science
Nanotechnology
Nanoscience
Biomedical Engineering
Bioengineering
In Situ Strain and Temperature Monitoring of Adaptive Composite Materials
Journal of Intelligent Material Systems and Structures
Materials Science
Mechanical Engineering
Self-Limiting Temperature Window for Thermal Atomic Layer Etching of HfO2 and ZrO2 Based on the Atomic-Scale Mechanism