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Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods

Irradiation of materials by high energy (∼MeV) ions causes intense electronic excitations through inelastic transfer of energy that significantly modifies physicochemical properties. We report the effect of 100 MeV Ag ion irradiation and resultant localized (∼few nm) thermal spike on vertically orie...

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Autores principales: Dey, Sutapa, Chakravorty, Anusmita, Mishra, Shashi Bhusan, Khatun, Nasima, Hazra, Arnab, Nanda, Birabar Ranjit Kumar, Sudakar, Chandran, Kabiraj, Debdulal, Roy, Somnath C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419832/
https://www.ncbi.nlm.nih.gov/pubmed/36132944
http://dx.doi.org/10.1039/d1na00666e
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author Dey, Sutapa
Chakravorty, Anusmita
Mishra, Shashi Bhusan
Khatun, Nasima
Hazra, Arnab
Nanda, Birabar Ranjit Kumar
Sudakar, Chandran
Kabiraj, Debdulal
Roy, Somnath C.
author_facet Dey, Sutapa
Chakravorty, Anusmita
Mishra, Shashi Bhusan
Khatun, Nasima
Hazra, Arnab
Nanda, Birabar Ranjit Kumar
Sudakar, Chandran
Kabiraj, Debdulal
Roy, Somnath C.
author_sort Dey, Sutapa
collection PubMed
description Irradiation of materials by high energy (∼MeV) ions causes intense electronic excitations through inelastic transfer of energy that significantly modifies physicochemical properties. We report the effect of 100 MeV Ag ion irradiation and resultant localized (∼few nm) thermal spike on vertically oriented TiO(2) nanorods (∼100 nm width) towards tailoring their structural and electronic properties. Rapid quenching of the thermal spike induced molten state within ∼0.5 picosecond results in a distortion in the crystalline structure that increases with increasing fluences (ions per cm(2)). Microstructural investigations reveal ion track formation along with a corrugated surface of the nanorods. The thermal spike simulation validates the experimental observation of the ion track dimension (∼10 nm diameter) and melting of the nanorods. The optical absorption study shows direct bandgap values of 3.11 eV (pristine) and 3.23 eV (5 × 10(12) ions per cm(2)) and an indirect bandgap value of 3.10 eV for the highest fluence (5 × 10(13) ions per cm(2)). First principles electronic structure calculations corroborate the direct-to-indirect transition that is attributed to the structural distortion at the highest fluence. This work presents a unique technique to selectively tune the properties of nanorods for versatile applications.
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spelling pubmed-94198322022-09-20 Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods Dey, Sutapa Chakravorty, Anusmita Mishra, Shashi Bhusan Khatun, Nasima Hazra, Arnab Nanda, Birabar Ranjit Kumar Sudakar, Chandran Kabiraj, Debdulal Roy, Somnath C. Nanoscale Adv Chemistry Irradiation of materials by high energy (∼MeV) ions causes intense electronic excitations through inelastic transfer of energy that significantly modifies physicochemical properties. We report the effect of 100 MeV Ag ion irradiation and resultant localized (∼few nm) thermal spike on vertically oriented TiO(2) nanorods (∼100 nm width) towards tailoring their structural and electronic properties. Rapid quenching of the thermal spike induced molten state within ∼0.5 picosecond results in a distortion in the crystalline structure that increases with increasing fluences (ions per cm(2)). Microstructural investigations reveal ion track formation along with a corrugated surface of the nanorods. The thermal spike simulation validates the experimental observation of the ion track dimension (∼10 nm diameter) and melting of the nanorods. The optical absorption study shows direct bandgap values of 3.11 eV (pristine) and 3.23 eV (5 × 10(12) ions per cm(2)) and an indirect bandgap value of 3.10 eV for the highest fluence (5 × 10(13) ions per cm(2)). First principles electronic structure calculations corroborate the direct-to-indirect transition that is attributed to the structural distortion at the highest fluence. This work presents a unique technique to selectively tune the properties of nanorods for versatile applications. RSC 2021-11-15 /pmc/articles/PMC9419832/ /pubmed/36132944 http://dx.doi.org/10.1039/d1na00666e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Dey, Sutapa
Chakravorty, Anusmita
Mishra, Shashi Bhusan
Khatun, Nasima
Hazra, Arnab
Nanda, Birabar Ranjit Kumar
Sudakar, Chandran
Kabiraj, Debdulal
Roy, Somnath C.
Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title_full Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title_fullStr Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title_full_unstemmed Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title_short Localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated TiO(2) nanorods
title_sort localized thermal spike driven morphology and electronic structure transformation in swift heavy ion irradiated tio(2) nanorods
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419832/
https://www.ncbi.nlm.nih.gov/pubmed/36132944
http://dx.doi.org/10.1039/d1na00666e
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