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Reconfigurable metasurface holography in the visible region is hindered by the trade-off between optical loss and phase tunability. We report a reconfigurable visible metasurface hologram operated at a fixed wavelength, enabled by the reversible phase transition of an Sb 2 S 3 phase-change metasurface. The device integrates nonvolatile switching with complementary polarization multiplexing and a computationally optimized phase framework to achieve on-demand control of multiple holographic channels without altering geometry. In the crystalline state, two distinct images are reconstructed under orthogonal linear polarizations ( x and y ), whereas in the amorphous state, two additional images are activated under left- and right-handed circular polarizations (LCP and RCP). An iterative Fourier–Adam optimization establishes a shared base phase that maintains interchannel orthogonality, suppressing crosstalk and enhancing reconstruction fidelity. The low-loss, nonvolatile Sb 2 S 3 platform provides a scalable route toward compact optical encryption and programmable visible photonics.
Yang et al. (Thu,) studied this question.