Carbogels for sustainable and scalable thermoelectric applications
Shoeb Athar, Jeremy Guazzagaloppa, Fabrice Boyrie, Cedric Huillet, Philippe Jund

TL;DR
This paper introduces electrically functionalized super-insulating carbogels for scalable thermoelectric waste heat recovery, demonstrating significant conductivity improvements and a proof-of-concept WiFi-based vacuum failure detection device.
Contribution
It presents a novel method to enhance thermoelectric properties of RF carbogels via pyrolysis and carbon fiber insertion, enabling scalable, sustainable TE applications.
Findings
Electrical conductivity increased by 12 orders of magnitude.
Intrinsic ultralow thermal conductivity retained (<50 mW/mK).
Successful demonstration of a self-powered WiFi vacuum-failure sensor.
Abstract
Thermoelectric generators (TEGs) based on commercially used thermal super-insulating materials can facilitate sustainable and large-scale ambient waste heat recovery while bequeathing an added economic and environmental value to thermal insulations in industry. This requires the optimization of the thermoelectric (TE) properties through electrical functionalization of such materials. Moreover, the associated engineering challenges of assembling TEG modules must be overcome. Herein, we propose using super-insulating Resorcinol-formaldehyde (RF) carbogels for scalable and sustainable TE applications through their electrical functionalization. Using a combination of a pyrolysis process and carbon fibers insertion, we achieved an increment by 12 orders of magnitude in electrical conductivity as well as ZT whilst retaining their intrinsic ultralow thermal conductivity (<50 mW/mK). A TE…
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Taxonomy
TopicsAdvanced Thermoelectric Materials and Devices · Aerogels and thermal insulation · Adsorption and Cooling Systems
