Department of Physics and Astronomy, Rice University, 6100 Main St, Houston, Texas 77005, USA.
Nanoscale. 2017 Jul 6;9(26):9160-9166. doi: 10.1039/c7nr02678a.
Nanoscale structuring holds promise to improve the thermoelectric properties of materials for energy conversion and photodetection. We report a study of the spatial distribution of the photothermoelectric voltage in thin-film nanowire devices fabricated from a single metal. A focused laser beam is used to locally heat the metal nanostructure via a combination of direct absorption and excitation of a plasmon resonance in Au devices. As seen previously, in nanowires shorter than the spot size of the laser, we observe a thermoelectric voltage distribution that is consistent with the local Seebeck coefficient being spatially dependent on the width of the nanostructure. In longer structures, we observe extreme variability of the net thermoelectric voltage as the laser spot is scanned along the length of the nanowire. The sign and magnitude of the thermoelectric voltage is sensitive to the structural defects, metal grain structure, and surface passivation of the nanowire. This finding opens the possibility of improved local control of the thermoelectric properties at the nanoscale.
纳米结构有望改善用于能量转换和光电探测的材料的热电性能。我们报告了对由单一金属制成的薄膜纳米线器件中光热电电压的空间分布的研究。通过将激光束聚焦在金属纳米结构上,并结合直接吸收和等离子体激元共振激发,来实现局部加热。与之前观察到的一样,在短于激光光斑尺寸的纳米线中,我们观察到的热电电压分布与局部塞贝克系数随纳米结构宽度的空间变化一致。在较长的结构中,当激光光斑沿着纳米线长度扫描时,我们观察到净热电电压的极端变化。热电电压的符号和大小对纳米线的结构缺陷、金属晶粒结构和表面钝化敏感。这一发现为在纳米尺度上实现热电性能的局部控制提供了可能性。