Molecular heat engines: Quantum coherence effects

Feng Chen, Yi Gao, Michael Galperin*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Recent developments in nanoscale experimental techniques made it possible to utilize single molecule junctions as devices for electronics and energy transfer with quantum coherence playing an important role in their thermoelectric characteristics. Theoretical studies on the efficiency of nanoscale devices usually employ rate (Pauli) equations, which do not account for quantum coherence. Therefore, the question whether quantum coherence could improve the efficiency of a molecular device cannot be fully addressed within such considerations. Here, we employ a nonequilibrium Green function approach to study the effects of quantum coherence and dephasing on the thermoelectric performance of molecular heat engines. Within a generic bichromophoric donor-bridge-acceptor junction model, we show that quantum coherence may increase efficiency compared to quasi-classical (rate equation) predictions and that pure dephasing and dissipation destroy this effect.

Original languageEnglish
Article number472
JournalEntropy
Volume19
Issue number9
DOIs
StatePublished - 1 Sep 2017
Externally publishedYes

Funding

FundersFunder number
National Science FoundationCHE-1565939, 1565939

    Keywords

    • Efficiency
    • Green functions
    • Molecular electronics
    • Quantum coherence

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