Boosting Thermoelectric Power Factor of Carbon Nanotube Networks with Excluded Volume by Co-embedded Microparticles
Oluwasegun Isaac Akinboye, Yu Zhang, Vamsi Krishna Reddy Kondapalli,, Fan Yang, Vesselin Shanov, Yue Wu, Je-Hyeong Bahk

TL;DR
Embedding insulating microparticles in carbon nanotube networks significantly enhances thermoelectric power factor by improving CNT connectivity and alignment, with over sixfold increase demonstrated through experimental and theoretical analysis.
Contribution
This work introduces a novel approach of using microparticles to enhance thermoelectric performance of CNT networks, combining experimental results with theoretical modeling.
Findings
Power factor increased by more than six times with silica microparticles.
Enhanced CNT alignment and connectivity due to microparticle exclusion effects.
Additional power factor improvement achieved through sample compression.
Abstract
Carbon nanotube (CNTs) networks embedded in polymer matrix have been extensively studied over the recent years as a flexible thermoelectric (TE) transport medium. However, their power factor has been largely limited by the relatively inefficient tunneling transport at junctions between CNTs and the low density of conducting channels through the networks. In this work, we demonstrate that significant enhancement of power factor is possible by adding electrically insulating microscale particles in CNT networks. When silica particles of a few micrometer diameters were co-embedded in single-walled CNT-polydimethylsiloxane (PDMS) composites, both the electrical conductivity and the Seebeck coefficient were simultaneously enhanced, thereby boosting the power factor by more than a factor of six. We find that the silica microparticles excluded a large volume of the composite from the access of…
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Taxonomy
TopicsAdvanced Thermoelectric Materials and Devices · Fuel Cells and Related Materials · Carbon Nanotubes in Composites
