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Urine-activated origami microbial fuel cells to signal proof of life

Urine-activated origami microbial fuel cells to signal proof of life
Urine-activated origami microbial fuel cells to signal proof of life
The adaptability and practicality of microbial fuel cells (MFCs) are highly desirable traits in the search for alternative sources of energy. An innovative application for the technology could be to power portable emergency locator transmitters (ELTs). Such devices would ideally need to be lightweight, robust and fast-in terms of response. Urine is an abundant resource, and with MFCs, could be the ideal fuel for powering ELTs, with the compelling advantage of also indicating proof of life. We developed novel origami tetrahedron MFCs (TP-MPFCs) using photocopier paper to test different urine-based inoculants. When inoculated with urine extracted from the anode chambers of working MFCs a stack of 6 abiotic MFCs produced a usable working voltage after just 3 h 15 min; enough to energise a power management system. The anodes of established TP-MFCs were then removed and air-dried for 7 days before being inserted into new paper reactors and refrigerated. After 4 weeks, these MFCs displayed an immediate response to fresh urine and achieved a functional working voltage in just 35 minutes. Two paper MFCs connected in parallel were able to transmit 85 radio signals and in a series configuration 238 broadcasts over 24 hours. These findings demonstrate that simple, inexpensive, lightweight paper MFCs can be employed as urine-activated, “proof of life” reporting systems.
2050-7488
7058-7065
Winfield, Jonathan
e81f4fad-1433-4c6a-9723-24a14f172896
Chambers, Lily D.
1f633c7c-3d84-4e86-a65d-ba91bd3049a7
Rossiter, Jonathan
64caa0df-19e0-40c8-ab69-7021de665c39
Greenman, John
eb3d9b82-7cac-4442-9301-f34884ae4a16
Ieropoulos, Ioannis
6c580270-3e08-430a-9f49-7fbe869daf13
Winfield, Jonathan
e81f4fad-1433-4c6a-9723-24a14f172896
Chambers, Lily D.
1f633c7c-3d84-4e86-a65d-ba91bd3049a7
Rossiter, Jonathan
64caa0df-19e0-40c8-ab69-7021de665c39
Greenman, John
eb3d9b82-7cac-4442-9301-f34884ae4a16
Ieropoulos, Ioannis
6c580270-3e08-430a-9f49-7fbe869daf13

Winfield, Jonathan, Chambers, Lily D., Rossiter, Jonathan, Greenman, John and Ieropoulos, Ioannis (2015) Urine-activated origami microbial fuel cells to signal proof of life. Journal of Materials Chemistry A, 3 (13), 7058-7065. (doi:10.1039/c5ta00687b).

Record type: Article

Abstract

The adaptability and practicality of microbial fuel cells (MFCs) are highly desirable traits in the search for alternative sources of energy. An innovative application for the technology could be to power portable emergency locator transmitters (ELTs). Such devices would ideally need to be lightweight, robust and fast-in terms of response. Urine is an abundant resource, and with MFCs, could be the ideal fuel for powering ELTs, with the compelling advantage of also indicating proof of life. We developed novel origami tetrahedron MFCs (TP-MPFCs) using photocopier paper to test different urine-based inoculants. When inoculated with urine extracted from the anode chambers of working MFCs a stack of 6 abiotic MFCs produced a usable working voltage after just 3 h 15 min; enough to energise a power management system. The anodes of established TP-MFCs were then removed and air-dried for 7 days before being inserted into new paper reactors and refrigerated. After 4 weeks, these MFCs displayed an immediate response to fresh urine and achieved a functional working voltage in just 35 minutes. Two paper MFCs connected in parallel were able to transmit 85 radio signals and in a series configuration 238 broadcasts over 24 hours. These findings demonstrate that simple, inexpensive, lightweight paper MFCs can be employed as urine-activated, “proof of life” reporting systems.

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Published date: 20 February 2015

Identifiers

Local EPrints ID: 454591
URI: http://eprints.soton.ac.uk/id/eprint/454591
ISSN: 2050-7488
PURE UUID: 90b80173-b360-4661-bd9a-babfb6b676c7
ORCID for Ioannis Ieropoulos: ORCID iD orcid.org/0000-0002-9641-5504

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Date deposited: 16 Feb 2022 17:49
Last modified: 17 Mar 2024 04:10

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Contributors

Author: Jonathan Winfield
Author: Lily D. Chambers
Author: Jonathan Rossiter
Author: John Greenman

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