4.7 Article

Charge carrier dynamics in conducting polymer PEDOT using ab initio molecular dynamics simulations

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JOURNAL OF CHEMICAL PHYSICS
卷 159, 期 15, 页码 -

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AIP Publishing
DOI: 10.1063/5.0169363

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This study develops a computational technique based on ab initio Car-Parrinello molecular dynamics to trace the temporal motion of charge carriers in the conducting polymer PEDOT. The researchers find that at low temperature, the distortion of the charge carrier gradually disappears and reappears near the position of the counterion. At room temperature, the distortion induced by the charge carrier and atomic vibrations are of similar magnitude, making it challenging to track the charge carrier distortion.
As conducting polymers become increasingly important in electronic devices, understanding their charge transport is essential for material and device development. Various semi-empirical approaches have been used to describe temporal charge carrier dynamics in these materials, but there have yet to be any theoretical approaches utilizing ab initio molecular dynamics. In this work, we develop a computational technique based on ab initio Car-Parrinello molecular dynamics to trace charge carrier temporal motion in archetypical conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT). Particularly, we analyze charge dynamics in a single PEDOT chain and in two coupled chains with different degrees of coupling and study the effect of temperature. In our model we first initiate a positively charged polaron (compensated by a negative counterion) at one end of the chain, and subsequently displace the counterion to the other end of the chain and trace polaron dynamics in the system by monitoring bond length alternation in the PEDOT backbone and charge density distribution. We find that at low temperature (T = 1 K) the polaron distortion gradually disappears from its initial location and reappears near the new position of the counterion. At the room temperature (T = 300 K), we find that the distortions induced by polaron, and atomic vibrations are of the same magnitude, which makes tracking the polaron distortion challenging because it is hidden behind the temperature-induced vibrations. The novel approach developed in this work can be used to study polaron mobility along and between the chains, investigate charge transport in highly doped polymers, and explore other flexible polymers, including n-doped ones.

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