Ionic Coordination and Hierarchical Architecture Enable Record n‐Type Thermoelectric Efficiency in Soft Hydrogels

C Chenyang Zhang (Department of Biopharmaceutics, Zhejiang Provincial Engineering Research Center of New Technologies and Applications for Targeted Therapy of Major Diseases, College of Life Science and Medicine, Zhejiang Sci-Tech University) X Xiao‐Lei Shi (School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia) X Xujiang Chao M Mingxu Wang W Wenyi Chen Q Qian Liu T Tianyi Cao (Bio-X Institutes, Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders (Ministry of Education), Shanghai Jiao Tong University) B Boxuan Hu S Shuai Sun (Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering) Z Zhi‐Gang Chen (School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia)

Abstract

ABSTRACT Ionic thermoelectric materials combine large thermopower, quasi‐solid‐state behavior, mechanical flexibility, and intrinsic stability, offering a low‐cost route for harvesting low‐grade heat energy. While p‐type ionogels based on ionic liquids have achieved excellent performance, efficient n‐type analogues remain challenging. Here, we design a poly(vinyl alcohol) (PVA)‐based n‐type ionogel by incorporating poly(3,4‐ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS), ionic liquid, and zinc bromide. Upon annealing, strong coordination between Zn 2+ ions and hydroxyl/sulfonic groups, together with the formation of anion‐rich clusters via preferential ion association, promotes rapid anion transport and enhances the Eastman entropy change. Simultaneously, the hierarchically layered ionic architecture suppresses phonon propagation and enhances carrier selectivity, resulting in a desirable balance between high ionic conductivity and low thermal conductivity. Consequently, the hydrogel achieves a remarkable thermopower of −128 mV K −1 , an ultrahigh power factor of 16.7 µW cm −1 K −2 , and an excellent thermoelectric figure of merit of 1.1 at room temperature. This work establishes a universal strategy for designing high‐performance n‐type ionic thermoelectric materials and opens avenues for flexible and sustainable heat‐to‐electricity conversion.

Article Details

Volume / Issue Vol. 65, Issue 18
Published April 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

C

Chenyang Zhang

Department of Biopharmaceutics, Zhejiang Provincial Engineering Research Center of New Technologies and Applications for Targeted Therapy of Major Diseases, College of Life Science and Medicine, Zhejiang Sci-Tech University

X

Xiao‐Lei Shi

School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia

X

Xujiang Chao

M

Mingxu Wang

W

Wenyi Chen

Q

Qian Liu

T

Tianyi Cao

Bio-X Institutes, Key Laboratory for the Genetics of Developmental and Neuropsychiatric Disorders (Ministry of Education), Shanghai Jiao Tong University

B

Boxuan Hu

S

Shuai Sun

Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering

Z

Zhi‐Gang Chen

School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia