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Updated: Aug 5, 2026

Piezoreflectance Spectroscopy of Optical Transitions in van der Waals Layered Crystals
Published on: May 22, 2026
The piezochiral effect
Z Zeng1,2, M Först1, M Fechner1
1Max Planck Institute for the Structure and Dynamics of Matter, Hamburg, Germany.
Researchers discovered the piezochiral effect, controlling chirality in crystals using mechanical strain. This breakthrough allows tunable, two-directional control of handedness in achiral materials, opening new avenues for spintronics and catalysis.
Area of Science:
- Solid-state physics and materials science
- Crystallography and structural analysis
- Optics and photonics
Background:
- Chirality is fundamental to physics, chemistry, and biology, influencing numerous phenomena.
- Controlling chirality in solid-state systems is highly desirable but challenging due to the lack of a universal conjugate field.
- Existing methods lack continuous, two-directional tunability for chirality control.
Purpose of the Study:
- To introduce and demonstrate a novel method for controlling chirality in solid-state systems using mechanical strain.
- To explore the potential of the piezochiral effect for tunable, two-directional chirality control.
- To establish a new paradigm for manipulating chiral properties in materials.
Main Methods:
- Symmetry analysis to predict strain-induced chirality in achiral crystals.
- Experimental verification using silver gallium sulfide (AgGaS2) crystals.
- Measurement of optical activity under applied mechanical strain.
Main Results:
- Uniaxial strain was shown to induce chirality in a broad class of achiral crystals.
- The induced handedness is tunable by altering strain direction or type (compressive/tensile).
- Experimental results in AgGaS2 confirmed the strain-induced optical activity.
Conclusions:
- The piezochiral effect provides a new, versatile scheme for rational control of chirality in solid-state materials.
- This effect enables continuous and bidirectional tuning of chirality via mechanical strain.
- Potential applications include spintronics, asymmetric catalysis, and enantioselective biosystems.
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