Defect-tolerant electron and defect-sensitive phonon transport in quasi-2D conjugated coordination polymers
Abstract
Abstract Thermoelectric materials, enabling direct waste-heat to electricity conversion, need to be highly electrically conducting while simultaneously thermally insulating. This is fundamentally challenging since electrical and thermal conduction usually change in tandem. In quasi-two-dimensional conjugated coordination polymer films we discover an advantageous thermoelectric transport regime, in which charge transport is defect-tolerant but heat propagation is defect-sensitive; it imparts the ideal mix of antithetical properties—temperature-activated, exceptionally low lattice thermal conductivities of 0.2 W m−1 K−1 below Kittel’s limit originating from small-amplitude, quasi-harmonic lattice dynamics with disorder-limited lifetimes and vibrational scattering length on the order of interatomic spacing, and high electrical conductivities up to 2000 S cm−1 with metallic temperature dependence, notably in poorly crystalline structures with paracrystallinity >10%. These materials offer attractive properties, such as ease of processing and defect tolerance, for applications, that require fast charge, but slow heat transport.
Article Details
Authors (10)
Hio-Ieng Un
Kamil Iwanowski
Jordi Ferrer Orri
Ian E. Jacobs
Naoya Fukui
David Cornil
Laboratory for Chemistry of Novel Materials
David Beljonne
Michele Simoncelli
Department of Physics
Hiroshi Nishihara
Henning Sirringhaus