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Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics

Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics
作为分子探针的异质结构量子点:化学和光物理学
批准号:
8321517
负责人:
Jennifer A. Hollingsworth
金额:
$31.64万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-01 至 2014-02-28

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中文摘要
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DESCRIPTION (provided by applicant): The overriding objective that will be pursued in this project is to develop new biocompatible fluorescent probes capable of providing facile detection of single-molecule events in living cells. In pursuit of this goal, under-explored and novel semiconductor nanocrystal quantum dot (NQD)-based probes will be synthesized, characterized with respect to their photophysical, structural and chemical properties, and screened to ascertain biocompatibility. NQDs offer high signal output, narrow bandwidth, improved stability with respect to photobleaching, broadband absorption for facile excitation, reasonably small size, and flexibility in surface chemistry for potentially achieving deliverability and physiological neutrality. The two NQD-based systems that will be developed here are (1) Near-infrared-emitting NQDs and (2) Lanthanide (Ln) doped NQDs, where the NQD serves as a sensitizer for Ln emission. We will target systems that provide emission from 600 - 1400 nm. This spectral region below 1000 nm is distinguished by a high transmittance through biological tissue and is worth extending farther into the infrared to 1400 nm for cellular studies, as interfering water absorption increases significantly only above this wavelength. Despite all the inherent advantages of NQD-based materials for optical imaging applications, several obstacles remain. Firstly, long-term single-NQD tracking in cells is hindered by fluorescence intermittency (blinking) that is characteristic of NQDs. Secondly, NQD biocompatibility is a concern for heavy-metal-containing NQDs or for NQDs that are improperly surface passivated. With respect to the first deficiency, though it has been postulated that the origin of blinking is related to charge transfer processes at the NQD surface, the experimental evidence is limited and the quantitative understanding of the connection between blinking and NQD charging is lacking. Without an experimentally validated understanding of this fundamental process, efforts to design and synthesize non-blinking NQDs are inherently impeded. We will perform steady-state and ultrafast spectroscopic studies to elucidate the mechanism of charging and correlate these results with single-NQD blinking studies. Results of spectroscopic studies will provide guidance for the design of photochemically stable structures that is anticipated to rely on inorganic heterostructuring (e.g., complex core/shell architectures). We will for the first time investigate blinking in infrared-emitting NQDs for which even rudimentary studies are lacking with the objective to understand the underlying mechanism and to develop synthetic strategies for its elimination. We will also investigate novel Ln-NQD coupled systems, in which the luminescence originates in the Ln dopant and is therefore not expected to exhibit blinking. The aim here will be to optimize the energy transfer process from the absorber NQD to the emitting Ln and, thereby, the signal output of the combined system. In parallel with these studies, we will address the second perceived deficiency of NQD-based fluorophores - insufficient biocompatibility - by investigating the toxicity and localization of our NQD-based probes in a variety of human cell lines. Similar to the blinking studies, the biocompatibility studies will provide valuable feedback in the design of probes possessing appropriate composition, surface passivation, and surface functionality. The ability to image real-time the location, activity and reactivity of biomolecules as they occur within living cells is fundamental to furthering biomedical science, including drug discovery, but currently available fluorescent molecular probes are not capable of providing for the routine study of molecules and molecular events. The advanced quantum dot based molecular probes that we propose to develop through a combination of fundamental physical, chemical and biological studies will enable the advances necessary for achieving the required optical molecular imaging capability.
期刊论文(14)
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会议论文
DOI: 10.1021/nl1004652
发表时间: 2010-07-14
期刊: Nano letters
影响因子: 10.8
作者: [Htoon H, Malko AV, Bussian D, Vela J, Chen Y, Hollingsworth JA, Klimov VI]
通讯作者: Klimov VI
DOI: 10.1117/12.809678
发表时间: 2009-03-03
期刊: Proceedings of SPIE--the International Society for Optical Engineering
影响因子: --
作者: [Hollingsworth JA, Vela J, Chen Y, Htoon H, Klimov VI, Casson AR]
通讯作者: Casson AR
Suppressed blinking and auger recombination in near-infrared type-II InP/CdS nanocrystal quantum dots.
在近红外II INP/CDS纳米晶量点中抑制眨眼和螺旋钻的重组。
DOI: 10.1021/nl302453x
发表时间: 2012-11-14
期刊: Nano letters
影响因子: 10.8
作者: [Dennis AM, Mangum BD, Piryatinski A, Park YS, Hannah DC, Casson JL, Williams DJ, Schaller RD, Htoon H, Hollingsworth JA]
通讯作者: Hollingsworth JA
DOI: 10.1021/nl901681d
发表时间: 2009-10
期刊: Nano letters
影响因子: 10.8
作者: [García-Santamaría F, Chen Y, Vela J, Schaller RD, Hollingsworth JA, Klimov VI]
通讯作者: Klimov VI
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    Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics
    Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics
    Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics
    Heterostructured Quantum Dots as Molecular Probes: Chemistry and Photophysics
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