Transport Properties of Active Particles Moving on Adjustable Networks

Fuente: arXiv
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Hauptverfasser: Oropesa, William G. C., de Castro, P., Löwen, Hartmut, Liarte, Danilo B.
Format: Preprint
Veröffentlicht: 2026
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_version_ 1866915774271062016
author Oropesa, William G. C.
de Castro, P.
Löwen, Hartmut
Liarte, Danilo B.
author_facet Oropesa, William G. C.
de Castro, P.
Löwen, Hartmut
Liarte, Danilo B.
contents Active adaptive matter has attracted considerable interest due to its rich, largely unexplained dynamics and its relevance to a wide range of synthetic and biological materials. An important subclass of such systems consists of active particles that can remodel the network in which they move. Here, we introduce a minimal yet versatile model of active particles moving on an adjustable network. In this model, particles undergo discrete run-and-tumble motion along the links of a triangular lattice and leave behind a trail of temporarily blocked links. These closed links cannot be traversed by other particles and reopen only after a characteristic healing time. The resulting trail-mediated blocking mechanism is fundamentally distinct from more familiar interactions such as excluded-volume effects. In the high-persistence limit, we find a qualitative contrast between the two mechanisms: while steric blocking leads to reduced diffusivity with increasing persistence, trail-induced blocking causes diffusivity to increase monotonically. We characterize this fundamental difference and the associated, unexpected transport properties, and discuss potential applications of our findings.
format Preprint
id arxiv_https___arxiv_org_abs_2602_04732
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Transport Properties of Active Particles Moving on Adjustable Networks
Oropesa, William G. C.
de Castro, P.
Löwen, Hartmut
Liarte, Danilo B.
Soft Condensed Matter
Statistical Mechanics
Active adaptive matter has attracted considerable interest due to its rich, largely unexplained dynamics and its relevance to a wide range of synthetic and biological materials. An important subclass of such systems consists of active particles that can remodel the network in which they move. Here, we introduce a minimal yet versatile model of active particles moving on an adjustable network. In this model, particles undergo discrete run-and-tumble motion along the links of a triangular lattice and leave behind a trail of temporarily blocked links. These closed links cannot be traversed by other particles and reopen only after a characteristic healing time. The resulting trail-mediated blocking mechanism is fundamentally distinct from more familiar interactions such as excluded-volume effects. In the high-persistence limit, we find a qualitative contrast between the two mechanisms: while steric blocking leads to reduced diffusivity with increasing persistence, trail-induced blocking causes diffusivity to increase monotonically. We characterize this fundamental difference and the associated, unexpected transport properties, and discuss potential applications of our findings.
title Transport Properties of Active Particles Moving on Adjustable Networks
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2602.04732