Geometry Challenges Entropy: Regime-DependentRectification in Nanofluidic Cascades

Fuente: arXiv
Saved in:
Bibliographic Details
Main Author: Peng, Ting
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910023023591424
author Peng, Ting
author_facet Peng, Ting
contents Can geometry alone reshape equilibrium? Cascaded nanofluidic chambers show complex accumulation patterns, traditionally attributed to geometric diode effects. We use 3D molecular dynamics to decouple funnel rectification from boundary reflection. Simulations with argon parameters (r = 0.19 nm) reveal a striking "reverse" rectification in a 2-chamber setup: the narrow side accumulates over 5x more particles (N_1/N_0 = 5.37 +/- 0.01, p < 0.0001). In a 10-chamber argon cascade, this effect drives massive downstream accumulation. A symmetric control (w_L = w_R) eliminates the gradient, confirming that funnel asymmetry - not boundary/edge effects - is the primary driver in the ballistic regime. By contrast, the super-atom regime is dominated by boundary reflection. Our results challenge standard entropic transport theory and provide design rules for passive, geometry-driven density gradients - no pump, no drive.
format Preprint
id arxiv_https___arxiv_org_abs_2602_13931
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Geometry Challenges Entropy: Regime-DependentRectification in Nanofluidic Cascades
Peng, Ting
Computational Physics
Soft Condensed Matter
Statistical Mechanics
Can geometry alone reshape equilibrium? Cascaded nanofluidic chambers show complex accumulation patterns, traditionally attributed to geometric diode effects. We use 3D molecular dynamics to decouple funnel rectification from boundary reflection. Simulations with argon parameters (r = 0.19 nm) reveal a striking "reverse" rectification in a 2-chamber setup: the narrow side accumulates over 5x more particles (N_1/N_0 = 5.37 +/- 0.01, p < 0.0001). In a 10-chamber argon cascade, this effect drives massive downstream accumulation. A symmetric control (w_L = w_R) eliminates the gradient, confirming that funnel asymmetry - not boundary/edge effects - is the primary driver in the ballistic regime. By contrast, the super-atom regime is dominated by boundary reflection. Our results challenge standard entropic transport theory and provide design rules for passive, geometry-driven density gradients - no pump, no drive.
title Geometry Challenges Entropy: Regime-DependentRectification in Nanofluidic Cascades
topic Computational Physics
Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2602.13931