Noble metal nanocatalysts are central to hydrogen evolution and nitroarene reduction, yet their performance is limited by a scarcity of active sites, unfavorable facet exposure, and ligand blocking. Strain engineering offers a route to modulate their electronic structure, but precisely exposing strained interfaces remains challenging. Here we introduce a mechanical force-driven strategy that enables programmable deformation of ultrathin metallic nanowires. Controlled bending and twisting exposes high-energy crystal facets and generates abundant grain boundaries. The curvature R (R = L0/L1) directly correlates with electronic structure modulation and catalytic activity. Highly curved Pt nanowires exhibit markedly enhanced performance, with reduced overpotentials for hydrogen evolution and a 10-fold increase in kinetic rate constants for nitroarene reduction. This rapid (<60 s), robust, and broadly applicable approach establishes a direct link between bending-induced strain, lattice rearrangement, and catalytic enhancement, offering a generalizable pathway for designing high-performance nanocatalysts across noble-metal and multimetallic systems.
Yang et al. (Mon,) studied this question.
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