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Main Authors: Pandey, Amit Kumar, Ren-Sawyer, Pei, Jung, Sunghwan, Zhang, Teng, Pandey, Anupam
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2512.18775
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author Pandey, Amit Kumar
Ren-Sawyer, Pei
Jung, Sunghwan
Zhang, Teng
Pandey, Anupam
author_facet Pandey, Amit Kumar
Ren-Sawyer, Pei
Jung, Sunghwan
Zhang, Teng
Pandey, Anupam
contents Blisters, delaminated regions that form in multilayered structures under compressive stresses, are observed across a wide range of length scales, from two-dimensional materials to protective coatings and laminated composites. Far from being passive defects, such interfacial features have emerged as functional motifs for three-dimensional architectures and reconfigurable surfaces. Here we reveal an unusual peel response of a blistered thin film on a soft substrate. When peeled from one end, the advancing peel front triggers reattachment at the blister edge once a critical separation is reached, initiating spontaneous rolling of the film on the substrate. This peel-to-roll transition produces a sharp drop in the measured adhesion force, which then remains constant throughout the rolling phase. Using experiments, scaling analysis, and molecular dynamics simulations, we resolve the contact morphology at the transition and identify the contact length at which rolling initiates. We show that this length arises from interactions between the two contact edges and is independent of the work of adhesion. Once rolling begins, a dynamically imposed dwell time - defined by the rolling length and peel speed - translates contact history into spatial variations in adhesion force, thereby governing the magnitude of the force drop. Together, these results point to a new pathway for generating spatially tunable, heterogeneous adhesion from otherwise homogeneous interfaces.
format Preprint
id arxiv_https___arxiv_org_abs_2512_18775
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Peeling-Induced Rolling and Heterogeneous Adhesion in Blistered Films
Pandey, Amit Kumar
Ren-Sawyer, Pei
Jung, Sunghwan
Zhang, Teng
Pandey, Anupam
Soft Condensed Matter
Blisters, delaminated regions that form in multilayered structures under compressive stresses, are observed across a wide range of length scales, from two-dimensional materials to protective coatings and laminated composites. Far from being passive defects, such interfacial features have emerged as functional motifs for three-dimensional architectures and reconfigurable surfaces. Here we reveal an unusual peel response of a blistered thin film on a soft substrate. When peeled from one end, the advancing peel front triggers reattachment at the blister edge once a critical separation is reached, initiating spontaneous rolling of the film on the substrate. This peel-to-roll transition produces a sharp drop in the measured adhesion force, which then remains constant throughout the rolling phase. Using experiments, scaling analysis, and molecular dynamics simulations, we resolve the contact morphology at the transition and identify the contact length at which rolling initiates. We show that this length arises from interactions between the two contact edges and is independent of the work of adhesion. Once rolling begins, a dynamically imposed dwell time - defined by the rolling length and peel speed - translates contact history into spatial variations in adhesion force, thereby governing the magnitude of the force drop. Together, these results point to a new pathway for generating spatially tunable, heterogeneous adhesion from otherwise homogeneous interfaces.
title Peeling-Induced Rolling and Heterogeneous Adhesion in Blistered Films
topic Soft Condensed Matter
url https://arxiv.org/abs/2512.18775