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Title: PAPER-BASED WEARABLE MOIST-ELECTRIC GENERATORS WITH EFFICIENT ATMOSPHERIC WATER CAPTURE
This study unveils a pioneering yet straightforward approach to creating a moist-electric generator, using paper as the primary substrate and integrating bacterial endospores within it. The distribution of these endospores is meticulously regulated by the paper's inherent capillary action. The functional groups present on the endospores enhance moisture absorption and facilitate ion dissociation, resulting in a pronounced potential gradient driven by the variation in water content and endospore concentration. To augment water capture efficiency, a paper-based Janus layer combining hydrophobic and hydrophilic properties is applied atop the paper-based moist-electric generator. This dual-sided membrane excels in moisture condensation from the atmosphere and ensures unidirectional water transport to the generator, thus ensuring substantial electrical output even under low relative humidity conditions. This research not only addresses the challenges of power generation in wearable paper-based devices but also heralds new pathways for the development of autonomous, cost-effective, and eco-friendly energy solutions for wearable technologies.  more » « less
Award ID(s):
2246975
PAR ID:
10514247
Author(s) / Creator(s):
; ;
Publisher / Repository:
Transducer Research Foundation
Date Published:
Journal Name:
Technical digest SolidState Sensor Actuator and Microsystems Workshop
ISSN:
1539-204X
Page Range / eLocation ID:
63-66
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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