Ion‑Mediated Structural Engineering of Hydrogel Interfaces for Tunable Mechanical and Analyte Diffusion Properties in Electrochemical Biosensors

D Dongwook Lee (Department of Chemistry Yonsei University Seoul Republic of Korea) S Soo A Kim (Division of Engineering in Medicine Department of Medicine Brigham and Women's Hospital Harvard Medical School Cambridge Massachusetts USA) B Beom‐Jun Shim (Department of Medical Engineering Yonsei University College of Medicine Seoul Republic of Korea) Y Yurim Lee T Tae Young Kim S Sunghyun Park (Department of Chemical System Engineering, The University of Tokyo, 7-3-1, Hongo, Bunkyo-ku 113-8656, Tokyo, Japan) Y Yeontaek Lee (Corporate Research Laboratory Lynk Solutec Inc Seoul Republic of Korea) H Hyeong Gyu Choi (Department of Battery Engineering Yonsei University Seoul Republic of Korea) K Kayoung Son S Su Bin Han (Department of Medical Engineering Yonsei University College of Medicine Seoul Republic of Korea) K Keun‐Young Yook (School of Electrical and Electronic Engineering Yonsei University Seoul Republic of Korea) S Seo Jung Kim (Department of Pediatrics, Severance Children's Hospital Yonsei University College of Medicine Seoul Republic of Korea) W Won‐Yong Lee (Department of Chemistry Yonsei University Seoul Republic of Korea) J Jungmok Seo J Jayoung Kim (Department of Chemical Engineering, Stanford University)

Abstract

ABSTRACT Advanced hydrogel interfaces exhibiting finely tuned mechanical characteristics and porosity are essential in wearable and implantable biosensors, mitigating tissue–device mismatches and controlling target analyte transport in biofluids. This work presents an ion‐mediated structural engineering approach designed to meticulously regulate the porous architecture and mechanical robustness of poly(vinyl alcohol)–alginate hydrogels (PAH) through straightforward ionic modulation, effectively addressing inherent trade‐offs between mechanical strength and analyte diffusion. Utilizing three complementary ionic mechanisms—salting‐out, calcium ion chelation, and sequence‐directed biomineralization—hydrogels with tailored porous microstructures are fabricated. The resulting hydrogels exhibit pore sizes ranging from 65 nm to 2.5 µm, mechanical moduli of 50–140 kPa, and controlled analyte diffusion behaviors. Leveraging this structural tunability, two exemplary glucose biosensors are demonstrated: a highly porous hydrogel‐integrated wearable biosensor designed for rapid and sensitive glucose monitoring in sweat, and a densely structured hydrogel‐integrated implantable biosensor optimized for robust and continuous glucose tracking in interstitial fluid. This innovative methodology elucidates critical interconnections between the hydrogel's ion‐mediated microstructural architecture, its mechanical robustness and tunable diffusion characteristics, and the resulting biosensing performance optimized for wearable and implantable applications, thereby advancing the design paradigm for next‐generation personalized biosensor interfaces.

Article Details

Volume / Issue Vol. 38, Issue 19
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

D

Dongwook Lee

Department of Chemistry Yonsei University Seoul Republic of Korea

S

Soo A Kim

Division of Engineering in Medicine Department of Medicine Brigham and Women's Hospital Harvard Medical School Cambridge Massachusetts USA

B

Beom‐Jun Shim

Department of Medical Engineering Yonsei University College of Medicine Seoul Republic of Korea

Y

Yurim Lee

T

Tae Young Kim

S

Sunghyun Park

Department of Chemical System Engineering, The University of Tokyo, 7-3-1, Hongo, Bunkyo-ku 113-8656, Tokyo, Japan

Y

Yeontaek Lee

Corporate Research Laboratory Lynk Solutec Inc Seoul Republic of Korea

H

Hyeong Gyu Choi

Department of Battery Engineering Yonsei University Seoul Republic of Korea

K

Kayoung Son

S

Su Bin Han

Department of Medical Engineering Yonsei University College of Medicine Seoul Republic of Korea

K

Keun‐Young Yook

School of Electrical and Electronic Engineering Yonsei University Seoul Republic of Korea

S

Seo Jung Kim

Department of Pediatrics, Severance Children's Hospital Yonsei University College of Medicine Seoul Republic of Korea

W

Won‐Yong Lee

Department of Chemistry Yonsei University Seoul Republic of Korea

J

Jungmok Seo

J

Jayoung Kim

Department of Chemical Engineering, Stanford University