Quantum Technology Centre, Department of Physics, Lancaster University, Lancaster LA1 4YB, UK.
Nanoscale. 2017 Apr 20;9(16):5299-5304. doi: 10.1039/c6nr09598d.
If high efficiency organic thermoelectric materials could be identified, then these would open the way to a range of energy harvesting technologies and Peltier coolers using flexible and transparent thin-film materials. We have compared the thermoelectric properties of three zinc porphyrin (ZnP) dimers and a ZnP monomer and found that the "edge-over-edge" dimer formed from stacked ZnP rings possesses a high electrical conductance, negligible phonon thermal conductance and a high Seebeck coefficient of the order of 300 μV K. These combine to yield a predicted room-temperature figure of merit of ZT ≈ 4, which is the highest room-temperature ZT ever reported for a single organic molecule. This high value of ZT is a consequence of the low phonon thermal conductance arising from the stacked nature of the porphyrin rings, which hinders phonon transport through the edge-over-edge molecule and enhances the Seebeck coefficient.
如果能够确定高效的有机热电材料,那么这将为一系列利用灵活透明薄膜材料的能量收集技术和珀耳帖冷却器开辟道路。我们比较了三种锌卟啉(ZnP)二聚体和一个 ZnP 单体的热电性质,发现由堆叠的 ZnP 环形成的“边缘对边缘”二聚体具有高的电导率、可忽略的声子热导率和高达 300 μV K 的高塞贝克系数。这些因素结合起来,预计室温下的品质因数 ZT 约为 4,这是迄今为止报道的单个有机分子在室温下的最高 ZT 值。ZT 值高是由于卟啉环的堆叠性质导致的低声子热导率所致,这阻碍了声子通过边缘对边缘分子的传输,并提高了塞贝克系数。