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Structure prediction for nanoscale magic-size CdSe clusters from a new efficient structure-searching strategy.

Gaolu Zhang1, Xin Wang1, Dingguo Xu1

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Magic-size clusters (MSCs) in quantum dot synthesis are key intermediates. This study predicts novel, stable core@cage structures for CdSe MSCs, including a first-time adamantane-type core for (CdSe)34.

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Area of Science:

  • Materials Science
  • Computational Chemistry
  • Nanotechnology

Background:

  • Magic-size clusters (MSCs) are vital in quantum dot (QD) synthesis, exhibiting unique optical properties and stability.
  • Understanding MSC structures is crucial, but often limited by the lack of single-crystal data.
  • Previous studies have not fully elucidated the structural diversity and stability of CdSe MSCs.

Purpose of the Study:

  • To perform structural searching and prediction for specific Cadmium Selenide (CdSe) magic-size clusters (MSCs) with sizes n=13, 19, 33, and 34.
  • To develop and validate an efficient computational workflow for identifying stable MSC structures.
  • To provide insights into the structural evolution and transformation mechanisms of CdSe MSCs.

Main Methods:

  • Integration of Ab Initio Random Structure Searching (AIRSS) for exploring structural possibilities.
  • Application of the semi-empirical extended tight binding (xTB) method for initial energy calculations.
  • Utilization of density functional theory (DFT) for accurate structural optimization and energy evaluation.

Main Results:

  • Identified core@cage as the dominant topology for the lowest energy isomers of the studied CdSe MSCs.
  • Discovered a novel, stable adamantane-type Cd4Se6 core structure for the (CdSe)34 cluster, reported for the first time.
  • Generated numerous new and more stable structural candidates for larger CdSe MSCs, expanding known structural landscape.

Conclusions:

  • The developed computational strategy effectively predicts stable structures for CdSe MSCs.
  • The core@cage topology represents a significant finding for CdSe MSCs, challenging previous assumptions.
  • This work offers valuable insights into the fundamental structures of CdSe MSCs and their potential formation pathways.