“…Such mechanical motions and photoreactivity in crystals triggered by [2 + 2] cycloaddition reactions have been recently reviewed by Khan et al, 2021, and Rath et al, 2022. , Tremendous effort has been made in the past few years to design and develop photodynamic molecular crystals driven by solid-state [2 + 2] reactions. Generally, in such photodynamic crystalline materials, the solid-state reactions are directed either by energetically weak noncovalent interactions (hydrogen, halogen, and molecular stacking) or by relatively strong metal-coordinated bonds. − , To the best of our knowledge, single-crystal motility, triggered by topochemical reactions for organoboron-based molecular materials, has never been reported, although the design and execution of stimuli responsive boron compounds, having integrated photoemission and mechanical properties, are considered highly desirable for the construction of next-generation smart materials. , In this context, the MacGillivray group initially showed the exploitation of donor–acceptor type B←N dative bonds in constructing molecular crystals that undergo intermolecular photocycloadditions but without dynamic effects. , Following their work and our continuing efforts toward the noncovalent synthesis of functional organoboron-based crystalline materials, we report here photomechanical single crystals of a substituted triphenylboroxine and 1,2-di(4-pyridyl)ethylene based adduct (BN1) via utilization of flexible B←N dative bonds that support intramolecular [2 + 2] cycloaddition in the crystal state and polymerization of the photoproduct during solution crystallization (Scheme ). Remarkably, depending on the morphology and size, the dynamic crystals of BN1 undergo diverse prompt photomechanical events such as controllable bending and reshaping, jumping, delaminating, splitting, and expanding when exposed to UV.…”