Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications

Colloidal nanocrystals with optical properties in the near-infrared (NIR) are of interest for many applications such as photovoltaic (PV) energy conversion, bioimaging, and therapeutics. For PVs and other electronic devices, challenges in using colloidal nanomaterials often deal with the surfaces....

Full description

Bibliographic Details
Main Author: Panthani, Matthew George
Format: Others
Language:en_US
Published: 2013
Subjects:
Online Access:http://hdl.handle.net/2152/19825
id ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-19825
record_format oai_dc
spelling ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-198252015-09-20T17:14:11ZColloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applicationsPanthani, Matthew GeorgeNanocrystalsQuantum dotNanotechnologyBioimagingGrapheneElectronicsColloidsNanoscienceSiliconSolar cellsPhotovoltaicsColloidal nanocrystals with optical properties in the near-infrared (NIR) are of interest for many applications such as photovoltaic (PV) energy conversion, bioimaging, and therapeutics. For PVs and other electronic devices, challenges in using colloidal nanomaterials often deal with the surfaces. Because of the high surface-to-volume ratio of small nanocrystals, surfaces and interfaces play an enhanced role in the properties of nanocrystal films and devices. Organic ligand-capped CuInSe2 (CIS) and Cu(InXGa1-X)Se2 (CIGS) nanocrystals were synthesized and used as the absorber layer in prototype solar cells. By fabricating devices from spray-coated CuInSe nanocrystals under ambient conditions, solar-to-electric power conversion efficiencies as high as 3.1% were achieved. Many treatments of the nanocrystal films were explored. Although some treatments increased the conductivity of the nanocrystal films, the best devices were from untreated CIS films. By modifying the reaction chemistry, quantum-confined CuInSeXS2-X (CISS) nanocrystals were produced. The potential of the CISS nanocrystals for targeted bioimaging was demonstrated via oral delivery to mice and imaging of nanocrystal fluorescence. The size-dependent photoluminescence of Si nanocrystals was measured. Si nanocrystals supported on graphene were characterized by conventional transmission electron microscopy and spherical aberration (Cs)-corrected scanning transmission electron microscopy (STEM). Enhanced imaging contrast and resolution was achieved by using Cs-corrected STEM with a graphene support. In addition, clear imaging of defects and the organic-inorganic interface was enabled by utilizing this technique.text2013-04-05T14:14:40Z2011-122012-01-13December 20112013-04-05T14:14:41Zapplication/pdfhttp://hdl.handle.net/2152/19825en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Nanocrystals
Quantum dot
Nanotechnology
Bioimaging
Graphene
Electronics
Colloids
Nanoscience
Silicon
Solar cells
Photovoltaics
spellingShingle Nanocrystals
Quantum dot
Nanotechnology
Bioimaging
Graphene
Electronics
Colloids
Nanoscience
Silicon
Solar cells
Photovoltaics
Panthani, Matthew George
Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
description Colloidal nanocrystals with optical properties in the near-infrared (NIR) are of interest for many applications such as photovoltaic (PV) energy conversion, bioimaging, and therapeutics. For PVs and other electronic devices, challenges in using colloidal nanomaterials often deal with the surfaces. Because of the high surface-to-volume ratio of small nanocrystals, surfaces and interfaces play an enhanced role in the properties of nanocrystal films and devices. Organic ligand-capped CuInSe2 (CIS) and Cu(InXGa1-X)Se2 (CIGS) nanocrystals were synthesized and used as the absorber layer in prototype solar cells. By fabricating devices from spray-coated CuInSe nanocrystals under ambient conditions, solar-to-electric power conversion efficiencies as high as 3.1% were achieved. Many treatments of the nanocrystal films were explored. Although some treatments increased the conductivity of the nanocrystal films, the best devices were from untreated CIS films. By modifying the reaction chemistry, quantum-confined CuInSeXS2-X (CISS) nanocrystals were produced. The potential of the CISS nanocrystals for targeted bioimaging was demonstrated via oral delivery to mice and imaging of nanocrystal fluorescence. The size-dependent photoluminescence of Si nanocrystals was measured. Si nanocrystals supported on graphene were characterized by conventional transmission electron microscopy and spherical aberration (Cs)-corrected scanning transmission electron microscopy (STEM). Enhanced imaging contrast and resolution was achieved by using Cs-corrected STEM with a graphene support. In addition, clear imaging of defects and the organic-inorganic interface was enabled by utilizing this technique. === text
author Panthani, Matthew George
author_facet Panthani, Matthew George
author_sort Panthani, Matthew George
title Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
title_short Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
title_full Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
title_fullStr Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
title_full_unstemmed Colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
title_sort colloidal nanocrystals with near-infrared optical properties : synthesis, characterization, and applications
publishDate 2013
url http://hdl.handle.net/2152/19825
work_keys_str_mv AT panthanimatthewgeorge colloidalnanocrystalswithnearinfraredopticalpropertiessynthesischaracterizationandapplications
_version_ 1716823059073073152