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Growth and Characterization of Strained and Alloyed Type-II ZnTe/ZnSe Core-Shell Nanocrystals

Author

  • Simon M. Fairclough
  • Edward J. Tyrrell
  • Darren M. Graham
  • Patrick J. B. Lunt
  • Samantha J. O. Hardman
  • Annette Pietzsch
  • Franz Hennies
  • Jonathan Moghal
  • Wendy R. Flavell
  • Andrew A. R. Watt
  • Jason M. Smith

Summary, in English

We investigate the growth and the physical and optical properties of type-II heterostructured ZnTe/ZnSe colloidal nanocrystals, focusing on the role of the 7% lattice mismatch between the two materials in determining growth homogeneity and band structure. We find that the lattice mismatch between the two materials places limitations on the range of structures that can be grown, and for those in which coherent growth is achieved we present clear evidence that the low bulk modulus ZnTe cores are compressed by the higher modulus ZnSe shells, accentuating the red-shift of the excitonic state with increasing shell thickness. By employing a variety of characterization tools we build a clear picture of the core-shell architecture. We show how strain is manifested in structures with sharp core-shell interfaces and how intentional alloying of the interface can influence the growth and exciton energies. We show that a (2,6)-band effective mass model is able to distinguish between the as-grown "sharp" and "alloyed" interfaces, indicating that the alloyed structures incorporate reduced strain.

Department/s

Publishing year

2012

Language

English

Pages

26898-26907

Publication/Series

Journal of Physical Chemistry C

Volume

116

Issue

51

Document type

Journal article

Publisher

The American Chemical Society (ACS)

Topic

  • Natural Sciences
  • Physical Sciences

Status

Published

ISBN/ISSN/Other

  • ISSN: 1932-7447