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Quantum Electronic and Thermoelectric Transport Properties through an Au-BDPA-Au Molecular Junction: A DFT+NRG Study
Ming-Hui Wang1,2,3, Zhen-Nian Wan1,3, Bohuai Xiao1
1Shiyan Key Laboratory of Quantum Information and Precision Optics, Hubei Key Laboratory of Energy Storage and Power Battery, School of Optoelectronic Engineering and School of New Energy, Hubei University of Automotive Technology, Shiyan 442002, People's Republic of China.
Abstract:
Organic thermoelectrics have been considered as a promising candidate for flexible, large-area, and low-cost energy generation or heating-cooling devices. Thanks to their intrinsic spin states, magnetic molecules are very attractive for designing high-performance thermoelectric devices. However, due to the strong interactions between π-electrons, a universal theoretical framework for the thermoelectric transport properties of organic magnetic molecules is still lacking. In this paper, we focus on a Au-α, γ-bisdiphenylene-β-phenylallyl (BDPA)-Au molecular junction. By combining the first-principles calculation with the nonperturbative numerical renormalization group method, and employing the single-orbital Anderson model, we systematically analyze its quantum electronic and thermoelectric transport properties. We find that the BDPA maintains its open-shell state and even connects with the Au electrodes, with the Kondo resonance originating from the unpaired electron on the singly unoccupied molecular orbital of the π-type. Near the particle-hole symmetric point, the electrical and thermal conductivities exhibit resonant peaks. Moreover, by adjusting the energy levels, the Seebeck coefficient can be altered, thereby achieving a high thermoelectric figure of merit. These findings provide useful insights for investigating the thermoelectric properties of metal-free radical molecules, and our suggested "ab initio + model calculation" theoretical framework may bring a promising methodology for exploring the complex π-electron magnetism dominant thermoelectric transport in real magnetic nanosystems.
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