ArticleNature communications2026
Reconfiguring handed shape-morphing and actuation in hydrogels via light-encoded rapid expansion.
Article in Nature communications, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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5 authors.
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Abstract
Reconfiguring handedness in synthetic systems with spatiotemporal control and reversible behavior remains a fundamental challenge in bioinspired robotics and materials science-especially in structurally homogeneous materials that lack intrinsic chirality. Here, we demonstrate homogeneous photoactive hydrogels capable of ultrafast, programmable handed shape-morphing, including helices and twists, through spatially controlled light illumination. This transformation is driven by a photoexpansion exceeding 80,000% volumetric growth within 40 seconds, enabled by the synergistic combination of spiropyran photoisomerization and tailored polymer-network interactions. Deterministic strain mismatches at illuminated interfaces allow on-demand forming and shaping of handed architectures, which can be erased in darkness and reprogrammed reversibly with light. We further synchronize opposing handedness and complex tendril-like geometries in a single material, and exploit handedness to achieve self-propelled rotation for robotic locomotion. This work introduces a versatile method for adaptive, lifelike chirality in homogeneous matter, closing a key gap between biological shape-morphing and engineered soft robotics.
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