Intrinsic Anti‐Freezing, Tough, and Transparent Hydrogels for Smart Optical and Multi‐Modal Sensing Applications

X Xinyue Zhang Y Ye Lin S Shengtao Shen (Key Laboratory of Advanced Materials Technologies International (HongKong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian 350108 China) Z Zehang Du (State Key Laboratory of Green and Efficient Development of Phosphorus Resources Key Laboratory of Advanced Materials Technologies International (Hong Kong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian China) Z Ziqing Lin (Department of Chemistry) P Piaopiao Zhou H Hanlin Huang (Key Laboratory of Advanced Materials Technologies International (HongKong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian 350108 China) X Xiaolin Lyu Z Zhigang Zou (National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Nanjing University, 22 Hankou Road, Nanjing 210093, China)

Abstract

AbstractHydrogels have received great attention due to their molecular designability and wide application range. However, they are prone to freeze at low temperatures due to the existence of mass water molecules, which can damage their flexibility and transparency, greatly limiting their use in cold environments. Although adding cryoprotectants can reduce the freezing point of hydrogels, it may also deteriorate the mechanical properties and face the risk of cryoprotectant leakage. Herein, the microphase‐separated structures of hydrogels are regulated to confine water molecules in sub‐6 nm nanochannels and increase the proportion of bound water, endowing the hydrogels with intrinsic anti‐freezing properties, high mechanical strength, good stretchability, remarkable fracture energy, and puncture resistance. Even after being kept in liquid nitrogen for 1000 h, the hydrogel still maintains good transparency. The hydrogel can exhibit excellent low‐temperature shape memory and intelligent optical waveguide properties. Additionally, the hydrogel can be assembled into strain and pressure sensors for flexible sensing at both room and low temperatures. The intrinsically anti‐freezing microphase‐separated hydrogel offers broad prospects in low‐temperature electronic and optical applications.

Article Details

Volume / Issue Vol. 37, Issue 8
Published February 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

X

Xinyue Zhang

Y

Ye Lin

S

Shengtao Shen

Key Laboratory of Advanced Materials Technologies International (HongKong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian 350108 China

Z

Zehang Du

State Key Laboratory of Green and Efficient Development of Phosphorus Resources Key Laboratory of Advanced Materials Technologies International (Hong Kong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian China

Z

Ziqing Lin

Department of Chemistry

P

Piaopiao Zhou

H

Hanlin Huang

Key Laboratory of Advanced Materials Technologies International (HongKong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies College of Materials Science and Engineering Fuzhou University Fuzhou Fujian 350108 China

X

Xiaolin Lyu

Z

Zhigang Zou

National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Nanjing University, 22 Hankou Road, Nanjing 210093, China