Electrospun Lignin/ZnO Nanofibrous Membranes for Self‐Powered Ultrasensitive Flexible Airflow Sensor and Wearable Device

Y Yifei Zhan J Jade Poisson X Xintong Meng (Department of Pathogenic Biology, Key Laboratory of Infection Immunity and Disease Intervention of Shandong Province, and Key Laboratory for Experimental Teratology of the Chinese Ministry of Education, School of Basic Medical Science, Cheeloo College of Medicine, Shandong University) Z Zengbin Wang (2Fujian Medical University, Fuzhou, China) L Lizhen Chen T Tun‐Hui Wu (Sustainable Materials and Chemistry Department of Wood Technology and Wood‐Based Composites University of Göttingen 37077 Göttingen Germany) R Robert Koehler (Faculty of Engineering and Health University of Applied Sciences and Arts Von‐Ossietzky‐Straße 99 37085 Göttingen Germany) K Kai Zhang

Abstract

Abstract The interest and demand for flexible sensors and wearable devices are rapidly growing. The added benefit of electricity generation, enabling gas sensors to be self‐powered, increases the applicability of these devices for flexible and wearable airflow sensors. Inspired by water evaporation‐induced power generation, this study explores its potential in sensing applications, which has not yet been explored in detail. Electrospinning technology is used to prepare superhydrophilic lignin/ZnO nanofibrous membranes with a ZnO nanoparticle layer, capable of generating at least 100 mV (which allows it to power its own signal transduction). The membrane is highly sensitive to variations in airflow, enabling its use as an ultrasensitive and flexible airflow sensor. This sensor demonstrates exceptional performance, including a fast response time (0.65 s), broad detection range (with lower detection limit down to 0.25 and upper detection limit of 3 m s −1 ), and extremely high airflow velocity detection accuracy. Beyond these, it can serve as a wearable sensor for sweat monitoring, motion detection, and breath monitoring (to accurately detect breathing rate, intensity and variations in speech). Such self‐powered, ultrasensitive, and flexible lignin/ZnO airflow sensors provide novel potential to advance the development of smart textiles and wearable electronics.

Article Details

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

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

Y

Yifei Zhan

J

Jade Poisson

X

Xintong Meng

Department of Pathogenic Biology, Key Laboratory of Infection Immunity and Disease Intervention of Shandong Province, and Key Laboratory for Experimental Teratology of the Chinese Ministry of Education, School of Basic Medical Science, Cheeloo College of Medicine, Shandong University

Z

Zengbin Wang

2Fujian Medical University, Fuzhou, China

L

Lizhen Chen

T

Tun‐Hui Wu

Sustainable Materials and Chemistry Department of Wood Technology and Wood‐Based Composites University of Göttingen 37077 Göttingen Germany

R

Robert Koehler

Faculty of Engineering and Health University of Applied Sciences and Arts Von‐Ossietzky‐Straße 99 37085 Göttingen Germany

K

Kai Zhang