2017
DOI: 10.1039/c7cp00798a
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Charge carrier mobility in one-dimensional aligned π-stacks of conjugated small molecules with a benzothiadiazole central unit

Abstract: A theoretical study is applied to gain insight into the microscopic electron and hole transport in benzothiadiazole-cored molecular semiconductors either with furan or thiophene flanks arranged in π-stacks. For the characterization of the energetics of the reduction and oxidation processes and their impact on the molecular geometry, the internal reorganization energy is defined for isolated molecules in the gas phase. The outer-shell reorganization energy is evaluated within the frequency-resolved cavity model… Show more

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Cited by 7 publications
(22 citation statements)
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“…The high and comparable charge carrier mobilities independently on the heteroatom of the flank are caused by the molecular symmetry of trans‐trans DPP molecules for which only parallel stacking patterns can be formed in a condense phase leading to a better electron coupling. As we found out in our previous work, such an orientation provokes better electronic coupling in the stacks as compared to anti‐parallel one, where overlap of the molecular orbitals is reduced …”
Section: Discussionmentioning
confidence: 99%
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“…The high and comparable charge carrier mobilities independently on the heteroatom of the flank are caused by the molecular symmetry of trans‐trans DPP molecules for which only parallel stacking patterns can be formed in a condense phase leading to a better electron coupling. As we found out in our previous work, such an orientation provokes better electronic coupling in the stacks as compared to anti‐parallel one, where overlap of the molecular orbitals is reduced …”
Section: Discussionmentioning
confidence: 99%
“…The reorganization energies λ are obtained using the four‐point formalism as a difference of geometry relaxation energies upon going from neutral (0) to charged‐state (±) geometry: normalλλi=()E#±+E#0()E±+E0 where E ± and E 0 are the ground state energies of charged and neutral state, respectively, and E#±, E#0 are the energies of charged states at optimized neutral‐state geometry, and vice versa …”
Section: Methodsmentioning
confidence: 99%
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