†Institute of Optics and Atomic Physics, Technical University of Berlin, Strasse des 17. Juni 135, 10623 Berlin, Germany.
‡Institute for Physico-Chemical Problems, Belarusian State University, 220030 Minsk, Belarus.
Nano Lett. 2015 Aug 12;15(8):4985-92. doi: 10.1021/acs.nanolett.5b00966. Epub 2015 Jul 27.
We report a comprehensive study on the two-photon absorption cross sections of colloidal CdSe nanoplatelets, -rods, and -dots of different sizes by the means of z-scan and two-photon excitation spectroscopy. Platelets combine large particle volumes with ultra strong confinement. In contrast to weakly confined nanocrystals, the TPA cross sections of CdSe nanoplatelets scale superlinearly with volume (V(∼2)) and show ten times more efficient two-photon absorption than nanorods or dots. This unexpectedly strong shape dependence goes well beyond the effect of local fields. The larger the particles' aspect ratio, the greater is the confinement related electronic contribution to the increased two-photon absorption. Both electronic confinement and local field effects favor the platelets and make them unique two-photon absorbers with outstanding cross sections of up to 10(7) GM, the largest ever reported for (colloidal) semiconductor nanocrystals and ideally suited for two-photon imaging and nonlinear optoelectronics. The obtained results are confirmed by two independent techniques as well as a new self-referencing method.
我们通过 Z 扫描和双光子激发光谱法对不同尺寸的胶体 CdSe 纳米板、纳米棒和纳米点的双光子吸收截面进行了全面研究。纳米板将大颗粒体积与超强限域结合在一起。与弱限域的纳米晶体不同,CdSe 纳米板的双光子吸收截面与体积(V(∼2))呈超线性比例,其双光子吸收效率比纳米棒或纳米点高十倍。这种出人意料的强烈形状依赖性远远超出了局部场的影响。颗粒的纵横比越大,对增加的双光子吸收的限制相关电子贡献就越大。电子限制和局域场效应对纳米板都很有利,使它们成为独特的双光子吸收体,其截面高达 10(7) GM,这是迄今为止报道的(胶体)半导体纳米晶体中最大的截面,非常适合双光子成像和非线性光电。通过两种独立的技术以及一种新的自参考方法证实了所获得的结果。