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Continuously tunable negative pressure for engineering high-symmetry nanocrystalline phases
Arkita Chakrabarti1, Ramchandra Gawas1, Craig L Johnson2
1Department of Chemical and Biological Engineering, Drexel University, Philadelphia, PA 19104.
Researchers developed a novel 3D scaffold to create tunable tensile strain, achieving negative pressure in perovskite materials. This method controls crystal structure and electronic properties for advanced material applications.
Area of Science:
- Materials Science
- Condensed Matter Physics
- Nanotechnology
Background:
- Strain engineering is crucial for tuning material properties.
- Conventional methods often rely on planar substrates, limiting strain types.
- Understanding strain effects in nanoconfined materials is essential.
Purpose of the Study:
- To demonstrate a general approach for achieving tunable, triaxial tensile strain using 3D nanoconfining scaffolds.
- To achieve and study the exotic condition of "negative pressure" in embedded materials.
- To investigate the impact of negative pressure on the structural and electronic properties of perovskite materials.
Main Methods:
- Embedding materials within 3D nanoconfining scaffolds (anodic aluminum oxide membranes).
- Utilizing thermal expansion mismatch to induce tunable, triaxial tensile strain.
- Employing controlled thermal hysteresis to tune crystal structure and octahedral rotations.
Main Results:
- Achieved continuously tunable, triaxial tensile strain and "negative pressure" (hundreds of megapascals) in CsPbI3 perovskites.
- Observed tuning of perovskite crystal symmetry toward higher symmetry with decreasing pore size (<40 nm).
- Demonstrated bandgap tunability under negative pressure, following trends of positive hydrostatic pressure and highlighting bond stretching effects.
Conclusions:
- The 3D scaffold approach provides a general method for inducing and controlling negative pressure in nanoconfined materials.
- Negative pressure significantly influences perovskite crystal structure and electronic properties, particularly bandgap and octahedral rotations.
- This work offers a framework for understanding and utilizing strain in nanocomposite materials.
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