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Multifunctional Hybrid Nanomaterials

Multifunctional Hybrid Nanomaterials
多功能杂化纳米材料
批准号:
RGPIN-2016-06629
负责人:
Naccache, Rafik
金额:
$3.13万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31

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中文摘要
翻译
这个原创和创新的研究项目侧重于:1)研究金属纳米颗粒(MNPs)和发光碳点(cd)的基本特性,以及(2)利用这些知识来设计纳米材料和纳米结构,这些纳米材料和纳米结构可用于开发属于自然科学和工程(NSE)目标的新应用。CDs是一类相对较新的纳米材料,被认为具有低化学毒性和高生物相容性。它们可以使用多种波长激发,并且它们的发射从紫外线到近红外(NIR)都是可调的。有效地利用CDs的发光特性允许应用开发,只有在了解其发光机制后才有可能,我们将使用稳态和动态光谱对其进行深入研究。为了提高它们的发光效率,我们将通过研究核/壳结构中的金属增强发光来提高发射量子产率,其中MNP核心被CD壳层包围。然后,我们将研究这些混合材料,用于开发二氧化碳光学传感器,以监测腐败(食品安全和智能包装应用)。此外,我们将把CD传感器集成到聚合物薄膜中,以模拟“现实生活”的包装条件。我们还将研究cd在多路检测中的应用,目的是检测和捕获重金属离子。我们将设计高度单分散的cd,在紫外/可见光下发射,并研究它们的物理化学和光学性质,以及表面钝化技术。此外,我们将研究可以捕获金属阳离子的寡核苷酸适配体的表面修饰方法,并开发用于检测(环境和生物传感应用)的灵敏的非辐射电子转移淬火试验。最后,我们将寻求设计一种多功能系统,可以利用我们的纳米材料的生物相容性,并开发一种用于分子货物成像和控制释放的多模态纳米载体系统。这些纳米载体将结合作为加热核心的MNPs和热响应性聚合物外壳,后者将封装核心并捕获经过靶向和治疗剂修饰的cd,作为一种受刺激的控制释放策略(靶向药物递送应用)。我们的研究项目将在纳米材料工程方面取得突破性的进展,其目标是:(1)培养高素质的人才,以满足学术界和工业界的科学和技术需求;(2)开发具体的应用,以满足加拿大社会的需求;(3)为实现未来的技术平台做出贡献,肯定加拿大在纳米技术研究和开发方面的领导地位。
英文摘要
This original and innovative research program focuses on: 1) the study of the fundamental properties of metallic nanoparticles (MNPs) and luminescent carbon dots (CDs), as well as (2) leveraging this knowledge to engineer nanomaterials and nanoconstructs that can be exploited for the development of novel applications that fall under the Natural Science and Engineering (NSE) targets.CDs, a relatively new class of nanomaterials, are regarded as having low chemical toxicity and high biocompatibility. They can be excited using multiple wavelengths and their emissions are tuneable from the ultraviolet to near-infrared (NIR). Effective exploitation of the luminescent properties of CDs allows for applications development, only possible upon understanding their luminescence mechanism, which we will thoroughly investigate using steady-state and dynamic spectroscopy. To enhance their luminescence efficiency, we will develop strategies for enhancing the emission quantum yield through studies of metal enhanced luminescence in core/shell architectures, where the MNP core is surrounded by a CD shell. We will then investigate these hybrid materials for the development of carbon dioxide optical sensors to monitor spoilage (food safety and smart packaging applications). In addition, we will integrate the CD sensors in polymer films to mimic “real-life” packaging conditions. We will also study CDs in multiplexing assays targeting the detection and capture of heavy metal ions. We will engineer highly monodisperse CDs, with emissions in the UV/Visible, and study their physico-chemical and optical properties, as well as surface passivation techniques. Moreover, we will study approaches towards surface modification with oligonucleotide aptamers that can capture metallic cations, and develop sensitive non-radiative electron-transfer quenching assays for detection (environmental and biosensing applications). Finally, we will seek to engineer a versatile system that can exploit the biocompatibility of our nanomaterials and develop a multimodal nanocarrier system for imaging and controlled-release of molecular cargo. These nanocarriers will combine MNPs, which will serve as a heating core, and a thermoresponsive polymeric shell, that will encapsulate the core and trap CDs modified with targeting and therapeutic agents, as a stimulated controlled release strategy (targeted drug delivery applications). Our research program will result in ground-breaking advancements in nanomaterials engineering with the aim of: (i) training highly qualified personnel to respond to the scientific and technological demands in academia and industry, (ii) developing concrete applications to address the needs of Canadian society and (iii) contributing towards the realization of the technology platform of the future, affirming Canada's role as a leader in Nanotechnology research and development.
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