Cargando…
Metastable CdTe@HgTe Core@Shell Nanostructures Obtained by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing
[Image: see text] Partial Hg(2+) → Cd(2+) cation exchange (CE) reactions were exploited to transform colloidal CdTe nanocrystals (NCs, 4–6 nm in size) into CdTe@HgTe core@shell nanostructures. This was achieved by working under a slow CE rate, which limited the exchange to the surface of the CdTe NC...
Autores principales: | , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2020
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8016170/ https://www.ncbi.nlm.nih.gov/pubmed/33814700 http://dx.doi.org/10.1021/acs.chemmater.9b05281 |
_version_ | 1783673802873372672 |
---|---|
author | Rosina, Irene Martín-García, Beatriz Spirito, Davide Dang, Zhiya Gariano, Graziella Marras, Sergio Prato, Mirko Krahne, Roman De Trizio, Luca Manna, Liberato |
author_facet | Rosina, Irene Martín-García, Beatriz Spirito, Davide Dang, Zhiya Gariano, Graziella Marras, Sergio Prato, Mirko Krahne, Roman De Trizio, Luca Manna, Liberato |
author_sort | Rosina, Irene |
collection | PubMed |
description | [Image: see text] Partial Hg(2+) → Cd(2+) cation exchange (CE) reactions were exploited to transform colloidal CdTe nanocrystals (NCs, 4–6 nm in size) into CdTe@HgTe core@shell nanostructures. This was achieved by working under a slow CE rate, which limited the exchange to the surface of the CdTe NCs. In such nanostructures, when annealed at mild temperatures (as low as 200 °C), the HgTe shell sublimated or melted and the NCs sintered together, with the concomitant desorption of their surface ligands. At the end of this process, the annealed samples consisted of ligand-free CdTe sintered films containing an amount of Hg(2+) that was much lower than that of the starting CdTe@HgTe NCs. For example, the CdTe@HgTe NCs that initially contained 10% of Hg(2+), after being annealed at 200 °C were transformed to CdTe sintered films containing only traces of Hg(2+) (less than 1%). This procedure was then used to fabricate a proof-of-concept CdTe-based photodetector exhibiting a photoresponse of up to 0.5 A/W and a detectivity of ca. 9 × 10(4) Jones under blue light illumination. Our strategy suggests that CE protocols might be exploited to lower the overall costs of production of CdTe thin films employed in photovoltaic technology, which are currently fabricated at high temperatures (above 350 °C), using post-process ligand-stripping steps. |
format | Online Article Text |
id | pubmed-8016170 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-80161702021-04-02 Metastable CdTe@HgTe Core@Shell Nanostructures Obtained by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing Rosina, Irene Martín-García, Beatriz Spirito, Davide Dang, Zhiya Gariano, Graziella Marras, Sergio Prato, Mirko Krahne, Roman De Trizio, Luca Manna, Liberato Chem Mater [Image: see text] Partial Hg(2+) → Cd(2+) cation exchange (CE) reactions were exploited to transform colloidal CdTe nanocrystals (NCs, 4–6 nm in size) into CdTe@HgTe core@shell nanostructures. This was achieved by working under a slow CE rate, which limited the exchange to the surface of the CdTe NCs. In such nanostructures, when annealed at mild temperatures (as low as 200 °C), the HgTe shell sublimated or melted and the NCs sintered together, with the concomitant desorption of their surface ligands. At the end of this process, the annealed samples consisted of ligand-free CdTe sintered films containing an amount of Hg(2+) that was much lower than that of the starting CdTe@HgTe NCs. For example, the CdTe@HgTe NCs that initially contained 10% of Hg(2+), after being annealed at 200 °C were transformed to CdTe sintered films containing only traces of Hg(2+) (less than 1%). This procedure was then used to fabricate a proof-of-concept CdTe-based photodetector exhibiting a photoresponse of up to 0.5 A/W and a detectivity of ca. 9 × 10(4) Jones under blue light illumination. Our strategy suggests that CE protocols might be exploited to lower the overall costs of production of CdTe thin films employed in photovoltaic technology, which are currently fabricated at high temperatures (above 350 °C), using post-process ligand-stripping steps. American Chemical Society 2020-03-12 2020-04-14 /pmc/articles/PMC8016170/ /pubmed/33814700 http://dx.doi.org/10.1021/acs.chemmater.9b05281 Text en Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Rosina, Irene Martín-García, Beatriz Spirito, Davide Dang, Zhiya Gariano, Graziella Marras, Sergio Prato, Mirko Krahne, Roman De Trizio, Luca Manna, Liberato Metastable CdTe@HgTe Core@Shell Nanostructures Obtained by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title | Metastable CdTe@HgTe Core@Shell Nanostructures Obtained
by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title_full | Metastable CdTe@HgTe Core@Shell Nanostructures Obtained
by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title_fullStr | Metastable CdTe@HgTe Core@Shell Nanostructures Obtained
by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title_full_unstemmed | Metastable CdTe@HgTe Core@Shell Nanostructures Obtained
by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title_short | Metastable CdTe@HgTe Core@Shell Nanostructures Obtained
by Partial Cation Exchange Evolve into Sintered CdTe Films Upon Annealing |
title_sort | metastable cdte@hgte core@shell nanostructures obtained
by partial cation exchange evolve into sintered cdte films upon annealing |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8016170/ https://www.ncbi.nlm.nih.gov/pubmed/33814700 http://dx.doi.org/10.1021/acs.chemmater.9b05281 |
work_keys_str_mv | AT rosinairene metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT martingarciabeatriz metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT spiritodavide metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT dangzhiya metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT garianograziella metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT marrassergio metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT pratomirko metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT krahneroman metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT detrizioluca metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing AT mannaliberato metastablecdtehgtecoreshellnanostructuresobtainedbypartialcationexchangeevolveintosinteredcdtefilmsuponannealing |