Alshammari Majed, Al-Jobory Alaa A, Alotaibi Turki, Lambert Colin J, Ismael Ali
Physics Department, Lancaster University Lancaster LA1 4YB UK
Department of Physics, College of Science, Jouf University Sakaka Saudi Arabia.
Nanoscale Adv. 2022 Oct 7;4(21):4635-4638. doi: 10.1039/d2na00515h. eCollection 2022 Oct 25.
Through a comprehensive theoretical study, we demonstrate that single-molecule junctions formed from asymmetric molecules with different terminal groups can exhibit Seebeck coefficients, whose sign depends on the orientation of the molecule within the junction. Three anthracene-based molecules are studied, one of which exhibits this bi-thermoelectric behaviour, due to the presence of a thioacetate terminal group at one end and a pyridyl terminal group at the other. A pre-requisite for obtaining this behaviour is the use of junction electrodes formed from different materials. In our case, we use gold as the bottom electrode and graphene-coated gold as the top electrode. This demonstration of bi-thermoelecricity means that if molecules with alternating orientations can be deposited on a substrate, then they form a basis for boosting the thermovoltage in molecular-scale thermoelectric energy generators (TEGs).
通过全面的理论研究,我们证明由具有不同端基的不对称分子形成的单分子结可以表现出塞贝克系数,其符号取决于分子在结内的取向。研究了三种基于蒽的分子,其中一种由于一端存在硫代乙酸酯端基而另一端存在吡啶基端基,表现出这种双热电行为。获得这种行为的一个先决条件是使用由不同材料形成的结电极。在我们的案例中,我们使用金作为底部电极,石墨烯包覆的金作为顶部电极。这种双热电性的证明意味着,如果具有交替取向的分子可以沉积在基板上,那么它们就构成了提高分子尺度热电器件(TEG)中热电压的基础。