Beyond Nanoporosity: A CO <sub>2</sub> ‐Conditioned Glassy Matrix Contributes to the Brittle‐to‐Ductile Transition of Nanocellular Polyetherimide

F Félix Lizalde‐Arroyo (Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain) F Frederik Van Loock V Victoria Bernardo (Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain) T Tuuli Peltola (Department of Physics and Helsinki Institute of Physics University of Helsinki Helsinki Finland) R René Bès A Alberto Tena (Surface and Porous Materials (SMAP) Associated Research Unit to CSIC Faculty of Science University of Valladolid Valladolid Spain) M Miguel Ángel Rodríguez‐Pérez (Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain) J Judith Martín‐de León (Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain)

Abstract

ABSTRACT Nanocellular polyetherimide (PEI) exhibits enhanced toughness and impact resistance compared to the initial solid precursor, an effect usually attributed to the presence of nanometric cells within a confined glassy polymer matrix. In this work, we examine whether the CO 2 saturation step used in gas dissolution foaming can affect the mechanical response by modifying the thermodynamic state of the glassy polymer. Thermal annealing without CO 2 increases the yield stress and reduces ductility, whereas solid PEI saturated with CO 2 and subsequently fully desorbed shows lower yield stress, an increase in tensile ductility, and an improved impact response. Density, gas transport, WAXS, and PALS measurements were used to further analyze this state, showing that the effect of CO 2 leads to a subtle modification of the glassy matrix, changing the packing and gas accessible regions of the matrix. It is proposed that this matrix state, together with the nanocellular architecture, contributes to the brittle‐to‐ductile transition observed in nanocellular PEI. Our work highlights that optimization of the mechanical properties of nanocellular polymers should not only focus on the key characteristics of the final cellular morphology, but also on the conditions that define the state of the polymer matrix surrounding the pores before and during foaming.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 19, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

F

Félix Lizalde‐Arroyo

Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain

F

Frederik Van Loock

V

Victoria Bernardo

Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain

T

Tuuli Peltola

Department of Physics and Helsinki Institute of Physics University of Helsinki Helsinki Finland

R

René Bès

A

Alberto Tena

Surface and Porous Materials (SMAP) Associated Research Unit to CSIC Faculty of Science University of Valladolid Valladolid Spain

M

Miguel Ángel Rodríguez‐Pérez

Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain

J

Judith Martín‐de León

Department of Condensed Matter Physics Faculty of Science CellMat Laboratory Campus Miguel Delibes University of Valladolid Valladolid Spain