Literature DB >> 24784933

Redox control of thermopower and figure of merit in phase-coherent molecular wires.

Víctor M García-Suárez1, Colin J Lambert, David Zs Manrique, Thomas Wandlowski.   

Abstract

We demonstrate how redox control of intra-molecular quantum interference in phase-coherent molecular wires can be used to enhance the thermopower (Seebeck coefficient) S and thermoelectric figure of merit ZT of single molecules attached to nanogap electrodes. Using first principles theory, we study the thermoelectric properties of a family of nine molecules, which consist of dithiol-terminated oligo (phenylene-ethynylenes) (OPEs) containing various central units. Uniquely, one molecule of this family possesses a conjugated acene-based central backbone attached via triple bonds to terminal sulfur atoms bound to gold electrodes and incorporates a fully conjugated hydroquinonecentral unit. We demonstrate that both S and the electronic contribution Z el T to the figure of merit ZT can be dramatically enhanced by oxidizing the hydroquinone to yield a second molecule, which possesses a cross-conjugated anthraquinone central unit. This enhancement originates from the conversion of the pi-conjugation in the former to cross-conjugation in the latter, which promotes the appearance of a sharp anti-resonance at the Fermi energy. Comparison with thermoelectric properties of the remaining seven conjugated molecules demonstrates that such large values of S and Z el T are unprecedented. We also evaluate the phonon contribution to the thermal conductance, which allows us to compute the full figure of merit ZT = Z el T/(1 + κ p/κ el), where κ p is the phonon contribution to the thermal conductance and κ el is the electronic contribution. For unstructured gold electrodes, κ p/κ el ≫⃒ 1 and therefore strategies to reduce κ p are needed to realize the highest possible figure of merit.

Entities:  

Year:  2014        PMID: 24784933     DOI: 10.1088/0957-4484/25/20/205402

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  2 in total

1.  Molecular design and control of fullerene-based bi-thermoelectric materials.

Authors:  Laura Rincón-García; Ali K Ismael; Charalambos Evangeli; Iain Grace; Gabino Rubio-Bollinger; Kyriakos Porfyrakis; Nicolás Agraït; Colin J Lambert
Journal:  Nat Mater       Date:  2015-12-07       Impact factor: 43.841

2.  Enhanced thermoelectric properties in anthracene molecular device with graphene electrodes: the role of phononic thermal conductance.

Authors:  Saeideh Ramezani Akbarabadi; Hamid Rahimpour Soleimani; Zahra Golsanamlou; Maysam Bagheri Tagani
Journal:  Sci Rep       Date:  2020-07-02       Impact factor: 4.379

  2 in total

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