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Binding self-propelled topological defects in active turbulence
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We report on the emergence of stable self-propelled bound defects in monolayers of active nematics, which form virtual full-integer topological defects in the form of vortices and asters. Through numerical simulations and analytical arguments, we identify the phase-space of the bound defect formation in active nematic monolayers. It is shown that an intricate synergy between the nature of active stresses and the flow-aligning behaviour of active particles can stabilise the motion of self-propelled positive half-integer defects into specific bound structures. Our findings uncover new complexities in active nematics with potential for triggering new experiments and theories.
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Cited by 1 Pith paper
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Defect states in compressible active polar fluids with turnover
Turnover generates outward flows from defect cores that overcome elastic attraction, stabilizing topological defects in compressible active polar fluids and producing lattices, foams, and vortex glasses.
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