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Hygroelectric generators, converting energy from moisture into electricity, have attracted great interest due to sustainable and ubiquitous moisture in the environment. However, it is absolutely necessary to replace the fragile and noxious materials reported previously in the hygroelectric generators before real applications for wearables. Herein, a green hygroelectric generator with a high current density is designed for the first time by printing functional materials that are abundant, safe to humans and environments. By engineering printable hydrogel through the synergistic effect of water absorption and ion migration on the fabric, the wearable fabric hygroelectric generators deliver a high open-circuit voltage of 1.2 V with a remarkable short-circuit current density of 1.0 mA·cm, more than 7 times that of most reported hygroelectric generators. The devices show no performance declination after long-term storage and bending tests due to the design of stable hydrogel and robust electrode/hydrogel interfaces. Moreover, the devices with cross-finger structures achieve a facile scalable integration for enhanced electric outputs. Exemplifying applications illustrate the great potential of the printed fabric hygroelectric generators as a direct current power supply for wearable applications. This work sheds light on a novel avenue to design safe and environmentally friendly energy harvesting devices for practical applications.
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http://dx.doi.org/10.1002/adma.202502091 | DOI Listing |
Small
July 2025
Tribology Research Institute, School of Mechanical Engineering, Southwest Jiaotong University, Chengdu, 610031, P. R. China.
Moisture-based power generation technology captures energy from moisture and can directly power small electronic devices. Effectively utilizing atmospheric water at a wide humidity range and converting it into electrical output at the same level is valuable. However, most devices significantly differ in power generation performance between high and low humidity environments, so the dynamic adaptability of wide humidity remains a major challenge for existing moisture-based power generators.
View Article and Find Full Text PDFAdv Mater
May 2025
Research Institute for Intelligent Wearable Systems, The Hong Kong Polytechnic University, Hong Kong, 999077, China.
Hygroelectric generators, converting energy from moisture into electricity, have attracted great interest due to sustainable and ubiquitous moisture in the environment. However, it is absolutely necessary to replace the fragile and noxious materials reported previously in the hygroelectric generators before real applications for wearables. Herein, a green hygroelectric generator with a high current density is designed for the first time by printing functional materials that are abundant, safe to humans and environments.
View Article and Find Full Text PDFAdv Mater
February 2025
Innovation Center for Textile Science and Technology, College of Textiles, Donghua University, Shanghai, 201620, China.
Textiles have played a pivotal role in human development, evolving from basic fibers into sophisticated, multifunctional materials. Advances in material science, nanotechnology, and electronics have propelled next-generation textiles beyond traditional functionalities, unlocking innovative possibilities for diverse applications. Thermal management textiles incorporate ultralight, ultrathin insulating layers and adaptive cooling technologies, optimizing temperature regulation in dynamic and extreme environments.
View Article and Find Full Text PDFACS Omega
October 2024
Electric Power Research Institute of Guizhou Power Grid Company Limited, Guiyang 550002, China.
The rapid advancement in the Internet of Things (IoT) has prompted a proliferation of sensor applications with increasing focus on harnessing environmental energy sources for powering these sensors. However, owing to the variability inherent in climatic and geographic conditions, a singular approach to environmental energy harvesting often fails to deliver sustainable and reliable power. Hygroelectric technology, leveraging the electrical coupling between nanostructured materials and water to convert moisture-derived energy into electricity, complements the advantages of light energy collection technology.
View Article and Find Full Text PDFBiosens Bioelectron
March 2024
Tribology Research Institute, School of Mechanical Engineering, Southwest Jiaotong University, Chengdu, 610031, PR China. Electronic address:
Tactile sensors play an important role in human-machine interaction (HMI). Compared to contact tactile sensing, which leaves physical hardware vulnerable to wear and tear, proximity sensing is better at reacting to remote events before physical contact. The apteronotus albifrons possess ion channel receptors for remote surroundings perception.
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