TY - JOUR
T1 - Hydrated Deep Eutectic Solvent Conductive Gels with Freeze-Resistance and Water-Free Conductivity for Flexible Sensors
AU - Chen, Guojing
AU - Wang, Shinuo
AU - Liu, Yunjiang
AU - Fan, Jiaying
AU - Wei, Jing
AU - Chai, Chunpeng
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/8/14
Y1 - 2026/8/14
N2 - Conductive hydrogels used in flexible sensors commonly suffer from poor freeze resistance, susceptibility to water loss, and low sensitivity. To address these issues, this study employed a cyclic freeze–thaw method to incorporate a urea/choline chloride deep eutectic solvent into a poly(vinyl alcohol) (PVA)/sodium alginate (SA) double-network structure, thereby developing an ionic gel based on a hydrated low-eutectic solvent. This U-DES forms strong hydrogen bonds with water molecules (binding energy: −20.2 kcal/mol), converting free water into nonfreezing bound water. Consequently, it completely suppresses ice crystal formation (no ice-melting peak) at temperatures above −60 °C and endows the material with excellent water-retention capacity. Simultaneously, the DES provides abundant ion carriers (Cl–, choline+), endowing the hydrogel with stable electrical conductivity. The resulting PSU-4 hydrogel exhibits balanced mechanical properties: tensile strength of approximately 0.13 MPa, elongation at break of approximately 500%, and maintains good fatigue resistance even after 200 cycles at 50% strain. As a strain sensor, the PSU-4 hydrogel exhibits linear response within a strain range of 0.5–200% (GF = 0.01925, R2 = 0.98998), with rapid and repeatable signal response. Demonstrated applications include real-time monitoring of wrist and finger movements, as well as encoding gestures into Morse code (e.g., “SOS” and “YES”). This work provides a simple and effective strategy for overcoming key limitations of conventional hydrogels in the field of flexible wearable electronics.
AB - Conductive hydrogels used in flexible sensors commonly suffer from poor freeze resistance, susceptibility to water loss, and low sensitivity. To address these issues, this study employed a cyclic freeze–thaw method to incorporate a urea/choline chloride deep eutectic solvent into a poly(vinyl alcohol) (PVA)/sodium alginate (SA) double-network structure, thereby developing an ionic gel based on a hydrated low-eutectic solvent. This U-DES forms strong hydrogen bonds with water molecules (binding energy: −20.2 kcal/mol), converting free water into nonfreezing bound water. Consequently, it completely suppresses ice crystal formation (no ice-melting peak) at temperatures above −60 °C and endows the material with excellent water-retention capacity. Simultaneously, the DES provides abundant ion carriers (Cl–, choline+), endowing the hydrogel with stable electrical conductivity. The resulting PSU-4 hydrogel exhibits balanced mechanical properties: tensile strength of approximately 0.13 MPa, elongation at break of approximately 500%, and maintains good fatigue resistance even after 200 cycles at 50% strain. As a strain sensor, the PSU-4 hydrogel exhibits linear response within a strain range of 0.5–200% (GF = 0.01925, R2 = 0.98998), with rapid and repeatable signal response. Demonstrated applications include real-time monitoring of wrist and finger movements, as well as encoding gestures into Morse code (e.g., “SOS” and “YES”). This work provides a simple and effective strategy for overcoming key limitations of conventional hydrogels in the field of flexible wearable electronics.
KW - conductivity
KW - deep eutectic solvents
KW - flexible sensors
KW - freeze resistance
KW - urea
UR - https://www.scopus.com/pages/publications/105047537464
U2 - 10.1021/acsapm.6c01915
DO - 10.1021/acsapm.6c01915
M3 - Article
AN - SCOPUS:105047537464
SN - 2637-6105
VL - 8
SP - 12759
EP - 12771
JO - ACS Applied Polymer Materials
JF - ACS Applied Polymer Materials
IS - 15
ER -