Tuning the Energy Gap of SiCH3 Nanomaterials Under Elastic Strain
Abstract
SiCH3 nanomaterials have been studied using the density functional theory. When the nanosheets and nanoribbons (armchair and zigzag) are introduced, their energy gap is modulated under elastic strain and width. The results show that the band gap of SiCH3 nanomaterials can be easily tuned using elastic strains and widths. Surprisingly, the band gap can be modulated along two directions, namely, compressing and stretching. The band gap decreases when increasing stretching strain or decreasing compressing strain. In addition, the band gap decreases when increasing the nanoribbon width. For energy gap engineering, the band gap can be tuned by strains and widths. Therefore, the SiCH3 nanomaterials play important roles in potential applications for strain sensors, electronics, and optical electronics.
- Publication:
-
Journal of Electronic Materials
- Pub Date:
- August 2018
- DOI:
- 10.1007/s11664-018-6333-3
- Bibcode:
- 2018JEMat..47.4615M
- Keywords:
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- Energy gap;
- strain;
- SiCH<SUB>3</SUB> nanomaterials;
- DFT