4.8 Article

Ripening of Semiconductor Nanoplatelets

Journal

NANO LETTERS
Volume 17, Issue 11, Pages 6870-6877

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.7b03191

Keywords

Colloidal semiconductor nanoplatelets; Ostwald ripening; growth kinetics; nucleation

Funding

  1. ETH Research Grant [ETH-38 14-1]
  2. Swiss National Science Foundation [200021-140617, 200020-159228]
  3. U.S. Office of Naval Research (ONR) through the Naval Research Laboratory's Basic Research Program
  4. ONR
  5. Swiss National Science Foundation (SNF) [200020_159228, 200021_140617] Funding Source: Swiss National Science Foundation (SNF)

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Ostwald ripening describes how the size distribution of colloidal particles evolves with time due to thermodynamic driving forces. Typically, small particles shrink and provide material to larger particles, which leads to size defocusing. Semiconductor nanoplatelets, thin quasi-two-dimensional (2D) particles with thicknesses of only a few atomic layers but larger lateral dimensions, offer a unique system to investigate this phenomenon. Experiments show that the distribution of nanoplatelet thicknesses does not defocus during ripening, but instead jumps sequentially from m to (m + 1) monolayers, allowing precise thickness control. We investigate how this counterintuitive process occurs in CdSe nanoplatelets. We develop a microscopic model that treats the kinetics and thermodynamics of attachment and detachment of monomers as a function of their concentration. We then simulate the growth process from nucleation through ripening. For a given thickness, we observe Ostwald ripening in the lateral direction, but none perpendicular. Thicker populations arise instead from nuclei that capture material from thinner nanoplatelets as they dissolve laterally. Optical experiments that attempt to track the thickness and lateral extent of nanoplatelets during ripening appear consistent with these conclusions. Understanding such effects can lead to better synthetic control, enabling further exploration of quasi-2D nanomaterials.

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