论文标题

Marcus分子连接中热电学理论

Marcus Theory of Thermoelectricity in Molecular Junctions

论文作者

Sowa, Jakub K., Gauger, Jan A. Mol. Erik M.

论文摘要

热电能量转化也许是分子电子潜在应用中最有希望的。最终,这项技术是在室温左右运行的,因此重要的是要考虑耗散效应在这些条件下的作用。在这里,我们开发了一种热电学理论,该理论解释了Marcus理论框架内的振动耦合。我们证明,在这种现象的理论描述中,必须包含终生扩展。我们进一步表明,塞贝克系数和功率因数随着重组能量的增加而降低,并在非零重组能量的情况下确定最佳的工作条件。最后,借助DFT计算,我们考虑了典型的富勒烯分子连接。我们估计该系统中可以获得的最大功率因数,并确认C $ _ {60} $是热电热转换转换的绝佳候选者。这项工作提供了应遵循的一般指导,以实现高效的分子热电材料。

Thermoelectric energy conversion is perhaps the most promising of the potential applications of molecular electronics. Ultimately, it is desirable for this technology to operate at around room temperature, and it is therefore important to consider the role of dissipative effects in these conditions. Here, we develop a theory of thermoelectricity which accounts for the vibrational coupling within the framework of Marcus theory. We demonstrate that the inclusion of lifetime broadening is necessary in the theoretical description of this phenomenon. We further show that the Seebeck coefficient and the power factor decrease with increasing reorganisation energy, and identify the optimal operating conditions in the case of non-zero reorganisation energy. Finally, with the aid of DFT calculations, we consider a prototypical fullerene-based molecular junction. We estimate the maximum power factor that can be obtained in this system, and confirm that C$_{60}$ is an excellent candidate for thermoelectric heat-to-energy conversion. This work provides general guidance that should be followed in order to achieve high-efficiency molecular thermoelectric materials.

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