Benetti Daniele, Cui Daling, Zhao Haiguang, Rosei Federico, Vomiero Alberto
INRS Centre for Energy, Materials and Telecommunications, 1650 Boulevard Lionel-Boulet, Varennes, Québec, J3X 1S2, Canada.
The State Key Laboratory and College of Physics, Qingdao University, No. 308 Ningxia Road, Qingdao, 266071, P. R. China.
Small. 2018 Dec;14(51):e1801668. doi: 10.1002/smll.201801668. Epub 2018 Oct 7.
Metal chalcogenide quantum dots (QDs) are among the most promising materials as light harvesters in all-inorganic systems for applications in solar cells and production of solar fuels. The electronic band structure of composite QDs formed by lead and cadmium chalcogenides directly grafted on highly oriented pyrolytic graphite surfaces through successive ionic layer absorption and reaction is investigated. Atomic force microscopy and Kelvin probe force microscopy (KPFM) are applied to investigate PbS, CdS, and PbS/CdS QD systems. The variation of the surface potential of individual QDs is measured, investigating the evolution of the electronic band structure as a function of QD size and composition. A shift of the Fermi level toward more negative values occurs when QD size is increased. The shift is more pronounced in CdS than in PbS, while the composite PbS/CdS exhibits an intermediate behavior. The calculated shift is in good agreement with the experiments. These results highlight the ability of KPFM to directly measure the electronic band structure in individual QDs of metal chalcogenide composites. This feature regulates charge dynamics in composite systems, thereby affecting device performance. This work provides valuable insights for applications in several fields, in which charge injection plays a major role.
金属硫族化物量子点(QDs)是全无机系统中最有前景的光捕获材料之一,可用于太阳能电池和太阳能燃料生产。研究了通过连续离子层吸附和反应直接接枝在高度取向热解石墨表面上的铅和镉硫族化物形成的复合量子点的电子能带结构。应用原子力显微镜和开尔文探针力显微镜(KPFM)研究PbS、CdS和PbS/CdS量子点系统。测量了单个量子点表面电位的变化,研究了电子能带结构随量子点尺寸和组成的演变。当量子点尺寸增加时,费米能级向更负值移动。这种移动在CdS中比在PbS中更明显,而复合PbS/CdS表现出中间行为。计算出的移动与实验结果吻合良好。这些结果突出了KPFM直接测量金属硫族化物复合材料单个量子点中电子能带结构的能力。这一特性调节了复合系统中的电荷动力学,从而影响器件性能。这项工作为电荷注入起主要作用的多个领域的应用提供了有价值的见解。