Superfunctional Materials by Ultra-Severe Plastic Deformation
Abstract
:1. Introduction to Severe Plastic Deformation
2. Ultra-Severe Plastic Deformation
2.1. Thermal Stability in New Immiscible Age-Hardenable Aluminum Alloys
2.2. Room-Temperature Superplasticity in Magnesium and Aluminum Alloys
2.3. High Strength and High Plasticity in Nangrained Intermetallics
2.4. Low Elastic Modulus and High Strength in Biocompatible Binary and High-Entropy Alloys
2.5. Superconductivity and High Strength in Nb-Ti Alloys
2.6. Room-Temperature Hydrogen Storage in Magnesium Alloys
2.7. Photocatalytic Water Splitting and CO2 Conversion on High-Entropy Ceramics
3. Concluding Remarks and Future Outlook
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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System | Maximum Shear Strain | Properties/Features | Reference |
---|---|---|---|
Mg-Li | 7800 | Room-temperature Sperplasticity | [45] |
Mg2X (X: 21 elements) | 5500 | Hydrogen storage | [43] |
Mg-Ti | 5500 | Hydrogen storage | [41] |
Mg-Zr | 55,000 | Hydrogen storage in new phases | [42] |
Mg-Hf | 3900 | Biocompatible new phases | [53] |
Mg-V-Cr | 50,000 | Hydrogen storage | [47] |
Mg4NiPd | 59,000 | Room-temperature hydrogen storage | [48] |
MgTiVCrFe | 12,000 | Hydrogen storage | [50] |
MgTiH4 | 17,000 | Hydrogen storage | [51] |
Al-Ca | 39,000 | High-temperature thermal stability | [55] |
Al-Fe | 39,000 | High-temperature thermal stability | [49] |
AlNi | 4700 | High hardness | [34] |
Al3Ni | 4700 | High hardness | [36,38] |
Al-Cu | 3900 | Ultra-fast diffusion | [24] |
Al-Zn | 7800 | Room-temperature superplasticity | [46] |
Al-Zr | 39,000 | Age hardening and thermal stability | [26] |
Al-La-Ce | 39,000 | Age hardening and thermal stability | [56] |
TiAl | 2000 | High strength and high plasticity | [35] |
TiV | 5500 | Hydrogen storage without activation process | [44] |
Ti-Nb | 5900 | Biocompatible with high strength and low elastic modulus | [52] |
TiZrHfNbTa | 2000 | Biocompatible with high strength and low elastic modulus | [57] |
TiZHfNbTaO11 | 7800 | Photocatalytic hydrogen production and CO2 conversion | [54,59] |
TiZrHfNbTaO6N3 | 3900 | Photocatalytic hydrogen production and CO2 conversion | [58,60] |
TiZrNbTaWO12 | 3900 | Photocatalytic oxygen production | [61] |
FeNi | 3900 | Ultra-fast phase transformation | [39] |
Ni2AlTi | 4700 | High strength | [37] |
Nb-Ti | 3900 | Superconductivity | [40] |
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Edalati, K. Superfunctional Materials by Ultra-Severe Plastic Deformation. Materials 2023, 16, 587. https://doi.org/10.3390/ma16020587
Edalati K. Superfunctional Materials by Ultra-Severe Plastic Deformation. Materials. 2023; 16(2):587. https://doi.org/10.3390/ma16020587
Chicago/Turabian StyleEdalati, Kaveh. 2023. "Superfunctional Materials by Ultra-Severe Plastic Deformation" Materials 16, no. 2: 587. https://doi.org/10.3390/ma16020587