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Interfacial Doping at Surfaces and in Low-Dimensional Materials

Interfacial Doping at Surfaces and in Low-Dimensional Materials
表面和低维材料中的界面掺杂
批准号:
RGPIN-2018-06145
负责人:
Kruse, Peter
金额:
$1.75万
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:
2019
资助国家:
加拿大
项目状态:
已结题
起止时间:
2019-01-01 至 2020-12-31

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中文摘要
翻译
单词to dope‘源于荷兰语doop,意思是浓稠的蘸酱,所以doopen的意思是蘸。就电子材料而言,它是指在材料中或材料上引入杂质(掺杂剂),导致其电子性质发生变化。例如,通过测量薄膜或低维结构的电阻变化,可以容易地检测到这种变化。因此,可以非常准确地定量确定浸渍酱油或掺杂剂的存在或存在,例如用于气体或液体传感器。对于这样的传感器来说,一个挑战是如何在之后移除蘸酱,以便重复使用设备。我们引入了分子开关的概念,作为纳米碳薄膜(或其他二维材料)的化学掺杂剂。在存在或不存在特定分析物的情况下,这些分子可以在掺杂和非掺杂状态之间切换。它们的选择性不仅是因为它们在掺杂行为上的变化,而且还因为它们物理上阻止了分析物溶液中的其他潜在掺杂剂与导电膜相互作用。实际上,它们形成了一种可以保留下来的蘸酱,因为它可以改变味道。基于这一概念,我们已经展示了由碳纳米管网络或覆盖有氧化还原可切换低聚苯胺的铅笔画薄膜制成的饮用水消毒传感器。这一概念也可以应用于其他分析物(饮用水中的pH、阴离子、阳离子等),但有必要更好地了解这些可切换的掺杂剂及其工作原理。*这项提议旨在了解可切换掺杂分子与二维材料的相互作用,例如石墨烯、二硫化钼或由不同等级的碳纳米管组成的渗流网络。特别是,我们将从五个方面阐明分子与衬底的相互作用:(1)衬底的化学同一性的作用;(2)衬底薄膜拓扑结构的作用(例如网络与单晶);(3)外加电场以平衡和量化分子掺杂效应;(4)分子的电子结构,也考虑到空间方面;(5)分子与衬底薄膜的链条性质(非共价与共价)以及与衬底中的化学缺陷的关系。*我们的传感器有可能比任何其他可用的技术更强大、更简单和更可靠。消毒剂传感器已经在用于饮用水质量控制的商业化道路上,但我们的目标是开发和部署阴离子、阳离子、pH和消毒剂传感器,用于市政供水、第一民族保护区、矿山附近的地表水或农田等的水质控制,从而造福于所有加拿大人的健康和他们的环境。我们的传感器还可以在医疗保健、研究或过程控制中找到应用。
英文摘要
The word to dope' derives from the Dutch word doop' meaning thick dipping sauce', so doopen' means to dip'. In the context of electronic materials, it refers to introducing impurities (dopants) into or onto a material that lead to a change in its electronic properties. Such a change is easily detected, e.g. by measuring the change in resistance of a thin film or low-dimensional structure. So the absence or presence of the dipping sauce', or dopant, can be determined quantitatively with great accuracy, e.g. for use in gas or liquid sensors. A challenge for such a sensor is how to remove the dipping sauce' afterwards in order to reuse the device. We introduce the concept of molecular switches as chemical dopants for thin nanocarbon (or other two-dimensional material) films. These molecules can be switched between doping and non-doping states in the presence or absence of a particular analyte. They impart selectivity not only due to their change in doping behavior, but also by physically blocking other potential dopants in the analyte solution from interacting with the conductive film. In effect, they form a dipping sauce' that can stay on, because it can be made to change flavor. Based on this concept, we have demonstrated disinfectant sensors for drinking water fabricated from carbon nanotube networks or pencil-drawn films coated in redox-switchable oligoanilines. The concept can also be applied to other analytes (pH, anions, cations, etc. in drinking water), but it becomes necessary to better understand these switchable dopants, and how they work. ******This proposal aims to build an understanding of the interactions of switchable dopant molecules with 2-dimensional materials such as graphene, molybdenum disulfide or percolation networks made of different grades of carbon nanotubes. In particular, there are five aspects of the molecule-substrate interaction that we will elucidate: (1) The role of the chemical identity of the substrate; (2) The role of substrate film topology (e.g. network vs. single crystal); (3) Application of an external electric field to balance out and quantify the molecular doping effect; (4) Electronic structure of the molecules, also considering steric aspects; (5) Nature of the tether of the molecules to the substrate film (non-covalent vs. covalent) and relation to chemical defects in the substrate. ******Our sensors have the potential to be more robust, simple and reliable than any other available technology. The disinfectant sensors are already on their way to commercialization for drinking water quality control, but we aim to develop and deploy anion, cation, pH, and disinfectant sensors for water quality control in municipal water supplies, on first nations reserves, surface waters near mines or agricultural land, etc., thus benefitting the health of all Canadians, and their environment. Our sensors can also find applications in healthcare, research, or process control.
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Interfacial Doping at Surfaces and in Low-Dimensional Materials
  • 批准号:
    RGPIN-2018-06145
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.75万
  • 财政年份:
    2022
  • 负责人:
    Kruse, Peter
  • 依托单位:
Interfacial Doping at Surfaces and in Low-Dimensional Materials
  • 批准号:
    RGPIN-2018-06145
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.75万
  • 财政年份:
    2021
  • 负责人:
    Kruse, Peter
  • 依托单位:
Proof-of-concept for chemiresistive water quality sensors: free chlorine in drinking water; ammonia in wastewater
  • 批准号:
    566183-2021
  • 项目类别:
    Alliance Grants
  • 资助金额:
    $2.19万
  • 财政年份:
    2021
  • 负责人:
    Kruse, Peter
  • 依托单位:
Aqueous chloramine sensors based on molecules acting as switchable dopant sites on graphene-like carbon films
  • 批准号:
    530411-2018
  • 项目类别:
    Collaborative Research and Development Grants
  • 资助金额:
    $4.37万
  • 财政年份:
    2020
  • 负责人:
    Kruse, Peter
  • 依托单位:
海外基金