Extremely low thermal conductivity and high electrical conductivity of sustainable carbon­ceramic electrospun nonwoven materials

Author:

Liao Xiaojian1ORCID,Denk Jakob2,Tran Thomas3ORCID,Miyajima Nobuyoshi4ORCID,Benker Lothar1,Rosenfeldt Sabine3,Schafföner Stefan2ORCID,Retsch Markus3ORCID,Greiner Andreas1ORCID,Motz Günter2ORCID,Agarwal Seema5ORCID

Affiliation:

1. Macromolecular Chemistry 2 and Bavarian Polymer Institute, University of Bayreuth, Bayreuth 95440, Germany.

2. Chair of Ceramic Materials Engineering, University of Bayreuth, Bayreuth 95440, Germany.

3. Physical Chemistry 1 Department of Chemistry, Bavarian Polymer Institute, Bayreuth Center for Colloids and Interfaces, Bavarian Center for Battery Technology (BayBatt), University of Bayreuth, Bayreuth 95440, Germany.

4. Bayerisches Geoinstitut, University of Bayreuth, Bayreuth 95440, Germany.

5. Macromolecular Chemistry 2, Bavarian Polymer Institute, Bavarian Center for Battery Technology (BayBatt), University of Bayreuth, Bayreuth 95440, Germany.

Abstract

Materials with an extremely low thermal and high electrical conductivity that are easy to process, foldable, and nonflammable are required for sustainable applications, notably in energy converters, miniaturized electronics, and high-temperature fuel cells. Given the inherent correlation between high thermal and high electrical conductivity, innovative design concepts that decouple phonon and electron transport are necessary. We achieved this unique combination of thermal conductivity 19.8 ± 7.8 mW/m/K (cross-plane) and 31.8 ± 11.8 mW/m/K (in-plane); electrical conductivity 4.2 S/cm in-plane in electrospun nonwovens comprising carbon as the matrix and silicon-based ceramics as nano-sized inclusions with a sea-island nanostructure. The carbon phase modulates electronic transport for high electrical conductivity, and the ceramic phase induces phonon scattering for low thermal conductivity by excessive boundary scattering. Our strategy can be used to fabricate the unique nonwoven materials for real-world applications and will inspire the design of materials made from carbon and ceramic.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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