Abstract
The manipulation of nano-objects through heating is an effective strategy for inducing structural modifications and therefore changing the optoelectronic properties of semiconducting materials. Despite its potential, the underlying mechanism of the structural transformations remains elusive, largely due to the challenges associated with their in situ observations. To address these issues, we synthesize temperature-sensitive CsPbBr3 perovskite nanoplatelets and investigate their structural evolution at the nanoscale using in situ heating transmission electron microscopy. We observe the morphological changes that start from the self-assembly of the nanoplatelets into ribbons on a substrate. We identify several paths of merging nanoplates within ribbons that ultimately lead to the formation of nanosheets dispersed randomly on the substrate. These observations are supported by molecular dynamics simulations. We correlate the various paths for merging to the random orientation of the initial ribbons along with the ligand mobility (especially from the edges of the nanoplatelets). This leads to the preferential growth of individual nanosheets and the merging of neighboring ones. These processes enable the creation of structures with tunable emission, ranging from blue to green, all from a single material. Our real-time observations of the transformation of perovskite 2D nanocrystals reveal a route to achieve large-area nanosheets by controlling the initial orientation of the self-assembled objects with potential for large-scale applications.
| Original language | English |
|---|---|
| Pages (from-to) | 13648-13658 |
| Number of pages | 11 |
| Journal | ACS Nano |
| Volume | 17 |
| Issue number | 14 |
| DOIs | |
| Publication status | Published - 25 Jul 2023 |
Bibliographical note
Funding Information:M.A. acknowledge financial support by the EU Horizon2020 MSCA RISE project COMPASS 691185. Work at the Molecular Foundry was supported by the Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy under contract no. DE-AC02-05CH11231. F.C., S.M.-A., and M.D. acknowledge financial support from the European Research Council (ERC Advanced Grant number ERC-2019-ADV-H2020 884902, SoftML). A.C. thanks S. Castelli for technical support on the analysis of the movies; M.A. and A.P. thank the electron microscopy and material characterization facilities at the Istituto Italiano di Tecnologia for their technical support.
Publisher Copyright:
© 2023 The Authors. Published by American Chemical Society.
Funding
M.A. acknowledge financial support by the EU Horizon2020 MSCA RISE project COMPASS 691185. Work at the Molecular Foundry was supported by the Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy under contract no. DE-AC02-05CH11231. F.C., S.M.-A., and M.D. acknowledge financial support from the European Research Council (ERC Advanced Grant number ERC-2019-ADV-H2020 884902, SoftML). A.C. thanks S. Castelli for technical support on the analysis of the movies; M.A. and A.P. thank the electron microscopy and material characterization facilities at the Istituto Italiano di Tecnologia for their technical support.
Keywords
- in situ heating
- in situ TEM
- perovskite nanoplatelets
- self-assembly
- shape transformation
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