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Updated: Jan 10, 2026

Molecular Entanglement and Electrospinnability of Biopolymers
Published on: September 3, 2014
Hydrodynamic spin-pairing and active polymerization of oppositely spinning rotors
Mattan Gelvan1,2, Artyom Chirko1,3, Jonathan Kirpitch1
1Department of Physics and Astronomy and the Center for the Physics and Chemistry of Living Systems, Tel-Aviv University, Tel Aviv, Israel.
None:
Rotors are common in nature - from rotating membrane-proteins to superfluid-vortices. Yet, little is known about the collective dynamics of heterogeneous populations of rotors. Here, we show experimentally, numerically, and analytically that at small but finite inertia, a mixed population of oppositely spinning rotors spontaneously self-assembles into active chains, which we term gyromers. The gyromers are formed and stabilized by fluid motion and steric interactions alone. A detailed analysis of pair interaction shows that rotors with the same spin repel and orbit each other while opposite rotors spin-pair and propagate together as bound dimers. Rotor dimers interact with individual rotors, each other, and the boundaries to form chains. A minimal model predicts the formation of gyromers in numerical simulations and their possible subsequent folding into secondary structures of lattices and rings. This inherently out-of-equilibrium polymerization process holds promise for engineering self-assembled metamaterials such as artificial macroscale proteins.
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