Institute of Optics and Atomic Physics, Technical University of Berlin, Strasse des 17. Juni 135, 10623 Berlin, Germany.
Research Institute for Physical Chemical Problems of Belarusian State University, 220006, Minsk, Belarus.
Nanoscale. 2019 Mar 7;11(9):3958-3967. doi: 10.1039/c8nr09458f. Epub 2019 Feb 14.
In a comparative study we investigate the carrier-phonon coupling in CdSe based core-only and hetero 2D as well as 0D nanoparticles. We demonstrate that the coupling can be strongly tuned by the lateral size of nanoplatelets, while, due to the weak lateral confinement, the transition energies are only altered by tens of meV. Our analysis shows that an increase in the lateral platelet area results in a strong decrease in the phonon coupling to acoustic modes due to deformation potential interaction, yielding an exciton deformation potential of 3.0 eV in line with theory. In contrast, coupling to optical modes tends to increase with the platelet area. This cannot be explained by Fröhlich interaction, which is generally dominant in II-VI materials. We compare CdSe/CdS nanoplatelets with their equivalent, spherical CdSe/CdS nanoparticles. Universally, in both systems the introduction of a CdS shell is shown to result in an increase of the average phonon coupling, mainly related to an increase of the coupling to acoustic modes, while the coupling to optical modes is reduced with increasing CdS layer thickness. The demonstrated size and CdS overgrowth tunability has strong implications for applications like tuning carrier cooling and carrier multiplication - relevant for solar energy harvesting applications. Other implications range from transport in nanosystems e.g. for field effect transistors or dephasing control. Our results open up a new toolbox for the design of photonic materials.
在一项对比研究中,我们研究了基于 CdSe 的核壳二维和零维纳米粒子中的载流子-声子耦合。我们证明,通过纳米板的横向尺寸可以对耦合进行强烈的调控,而由于较弱的横向限制,仅通过几十毫电子伏特就可以改变跃迁能量。我们的分析表明,由于变形势相互作用,横向板面积的增加会导致与声子模式的耦合强烈减弱,从而使激子变形势降低至 3.0 eV,这与理论相符。相比之下,与光学模式的耦合随板面积的增加而增加。这不能用通常在 II-VI 材料中占主导地位的 Fröhlich 相互作用来解释。我们将 CdSe/CdS 纳米板与等效的球形 CdSe/CdS 纳米粒子进行了比较。在这两种体系中,普遍发现引入 CdS 壳层会导致平均声子耦合增加,这主要与声子耦合增强有关,而随着 CdS 层厚度的增加,光学模式的耦合会减少。所展示的尺寸和 CdS 外延调谐性对调谐载流子冷却和载流子倍增等应用具有重要意义,这与太阳能收集应用有关。其他影响范围从纳米系统中的输运,例如场效应晶体管或退相控制。我们的结果为光子材料的设计提供了一个新的工具包。