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Tiny molecular scissors reveal how crystals bend without breaking

Tiny molecular scissors reveal how crystals bend without breaking

phys.org 21.09.2026 15:00 5 views
Crystals are usually thought of as rigid and brittle. Yet some molecular crystals can bend, jump, twist or even change shape when exposed to light. Understanding how tiny molecular movements inside an ordered crystal can

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Crystals are usually thought of as rigid and brittle. Yet some molecular crystals can bend, jump, twist or even change shape when exposed to light.

Understanding how tiny molecular movements inside an ordered crystal can produce such large visible motions is an important challenge for developing responsive materials that could eventually be used in actuators, sensors and other miniature devices. A research team led by Jye-Shane Yang at National Taiwan University has uncovered a molecular mechanism that helps explain how such crystals accommodate large mechanical changes without necessarily breaking. The study, published in Angewandte Chemie International Edition, focuses on a family of closely related light-responsive molecular crystals built from anthracene, pentiptycene and semifluorinated molecular segments.

The researchers discovered that molecules within these crystals are arranged in a way that resembles a network of interconnected scissors. Neighboring molecules form joints that allow the structure to extend or contract in a coordinated manner. When a crystal is bent, the molecular "scissors" open on one side and close on the other, helping the crystal accommodate the strain.

Light can trigger related structural changes, producing much larger deformation. Using X-ray measurements on bent crystals, computer simulations, single-crystal structural analysis and solid-state nuclear magnetic resonance spectroscopy, the researchers tracked these molecular changes from several complementary perspectives. Particularly important was the structural characterization of a crystal partway through its light-induced transformation, which provided direct evidence of the large rearrangement associated with the scissor-like motion.

The team then compared several closely related crystals in which the length of a semifluorinated molecular segment was systematically varied. Surprisingly, small changes in this segment produced very different behaviors. Some crystals were brittle, one displayed dramatic light-induced motion and fragmentation, while another could undergo unusually large elastic bending and light-driven expansion while remaining intact.

The comparison revealed an important feature behind this difference: The starting position of the molecular scissors determines how much room remains for them to open and close. The crystal showing the most robust deformation had a relatively balanced capacity for both motions. By contrast, structures positioned too close to one extreme had less ability to accommodate strain and were more prone to fracture or mechanical instability.

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