Wei Zou, Qing Wu, Jiawei Lin, Kunchen Li, Yulong Ying, Josep Puigmartí-Luis, Salvador Pané, Sheng Wang
Micro- and nanomotors (MNMs) promise impact in the areas of environmental remediation and biomedicine, but reliable three-dimensional (3D) control remains challenging. Conventional bubble-propelled MNMs can move in 3D, yet their trajectories are stochastic and energy-inefficient. Here we introduce a buoyancy-regulated strategy inspired by cyanobacteria-like microvesicles. We engineer sodium-alginate (SA)hydrogel magnetic micromotors (SA/Cu-TiO2/Fe3O4), in which Cu-TiO2 is derived from the Ti-based metal-organic framework MIL-125(Tiv), yielding a porous and defect-rich photocatalyst with uniformly distributed Cu sites for enhanced H2O2 decomposition and photocatalytic activity compared with pristine TiO2. Upon illumination, Cu-TiO2 catalyzes H2O2 decomposition to generate O2 pockets that are retained within the elastic, semipermeable alginate matrix, enabling programmable flotation and precise control of vertical (Z-axis) position as part of full 3D navigation. We analyze the energetics and cross-scale mass-transport mechanisms governing this buoyancy control, and we demonstrate guided 3D motion through a maze via magnetic steering. In model turbid water, the micromotors achieve high removal performance across diverse organic contaminants. This bioinspired platform provides a prototype and motion-control paradigm for 3D-motile MNMs, advancing practical remediation in aquatic environments.