Charge transport in doped conjugated polymers for organic thermoelectrics
Dorothea Scheunemann, Emmy J\"arsvall, Jian Liu, Davide Beretta,, Simone Fabiano, Mario Caironi, Martijn Kemerink, and Christian M\"uller

TL;DR
This review discusses recent advances in molecular doping of conjugated polymers to enhance their electrical conductivity and thermoelectric performance, emphasizing the interplay of chemical design, processing, and nanostructure.
Contribution
It summarizes strategies and principles for improving thermoelectric properties of doped conjugated polymers, integrating experimental and theoretical insights.
Findings
Doping efficiency depends on chemical design and processing conditions.
Uniaxial alignment improves thermoelectric performance.
Manipulating dielectric constant and dopant size enhances stability and conductivity.
Abstract
Research on conjugated polymers for thermoelectric applications has made tremendous progress in recent years, which is accompanied by surging interest in molecular doping as a means to achieve the high electrical conductivities that are required. A detailed understanding of the complex relationship between the doping process, the structural as well as energetic properties of the polymer films, and the resulting thermoelectric behavior is slowly emerging. This review summarizes recent developments and strategies that permit enhancing the electrical conductivity of p- and n-type conjugated polymers via molecular doping. The impact of the chemical design of both the polymer and the dopant, the processing conditions, and the resulting nanostructure on the doping efficiency and stability of the doped state are discussed. Attention is paid to the interdependence of the electrical and thermal…
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