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Metal Clusters, Metal Nanostructures, Semiconductor Nanocrystals, Single-Ion Magnets

Metal Clusters, Metal Nanostructures, Semiconductor Nanocrystals, Single-Ion Magnets
金属簇、金属纳米结构、半导体纳米晶体、单离子磁体
批准号:
RGPIN-2021-03176
负责人:
Hamilton, Ian
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:
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
我的研究项目旨在了解和优化金属团簇的催化性能,金属纳米结构和半导体纳米晶体的光电性能,以及掺杂金团簇单离子磁体的操作性能。i)我们如何优化金属团簇对乙醇氧化的催化性能?乙醇是可再生的、可生物降解的、富氢的,并且可以氧化合成多种有价值的化学品。我们研究了无支撑铸币金属团簇在零开尔文条件下催化乙醇氧化第一步的能力。我们发现,铜团簇是比银或金催化剂更好的催化剂,阴离子团簇是比中性团簇更好的催化剂,单个M原子是比M2, M3和M4更好的催化剂。这些结果将指导我们未来在有限温度下支持金属团簇的研究。ii)如何优化金属纳米结构和半导体纳米晶体的光电性能?对于金属纳米结构,我们将重点关注金,因为它相对不活泼,可以采用许多(局部)稳定的几何形状。我们的重点是金棒结构,因为它们可以用作纳米结构设备的电连接器。半导体纳米晶体用于光伏器件。光子被吸收后,形成电子-空穴对,并产生电流。它们也用于显示设备,在这些设备中发生相反的过程。由于量子约束,较小的纳米晶体具有较大的带隙,可以更好地利用高能量光子。在实验条件下,这些物质通常是富镉的(带正电),必须使用带负电的x型配体,如Cd16Se10Cl12和Cd59Se50(CH3COO)18进行钝化。在实验研究的推动下,我们将研究银原子掺杂小CdSe纳米晶体对电荷迁移率的影响。此外,我们将研究掺杂高自旋原子(如Mn, Fe或co)的CdSe纳米晶体的磁性能。iii)我们如何优化新型单离子磁体的磁性能?单分子磁体(SMMs)在量子信息处理设备中具有作为量子比特(量子位)使用的潜力。smm通常有6到12个高自旋原子通过氧或氮桥接原子相互连接。我们的主要目标是深入了解smm的一个子集,称为单离子磁体(SIMs),它通常由配体保护的高自旋原子组成,该原子被困在具有固定SIM-SIM距离的晶格中。如果在金簇中掺杂高自旋原子,如Mn、Fe、Co,则由于Au具有较大的电负性,高自旋原子将带正电荷。因此,这些物种是一种新型的“独立式”SIM,可以排列在具有最佳SIM-SIM距离的表面上。这可能会产生具有独特功能的量子位。
英文摘要
My research program seeks to understand and optimize the catalytic properties of metal clusters, the optoelectronic properties of the metal nanostructures and semiconductor nanocrystals, and the operational properties of doped gold cluster single-ion magnets. i) How can we optimize the catalytic properties of metal clusters for ethanol oxidation? Ethanol is renewable, biodegradable, hydrogen rich and can be oxidized to synthesize a wide range of valuable chemicals. We examined the ability of unsupported coinage metal clusters to catalyze the first step of ethanol oxidation at zero Kelvin. We found that copper clusters were better catalysts than silver or gold catalysts and that anionic clusters are better than neutral clusters, and that single M atoms are better catalysts than M2, M3, and M4. These results will guide our future studies of supported metal clusters at finite temperature. ii) How can we optimize the optoelectronic properties of metal nanostructures and semiconductor nanocrystals? For metal nanostructures we will focus on gold since it is relatively unreactive and can adopt many (locally) stable geometries. Our focus is on gold rod structures because they could be used as electrical connectors in nanostructured devices. Semiconductor nanocrystals are used in photovoltaic devices. Upon absorption of a photon, an electron-hole pair is formed and an electrical current can be generated. They are also used in display devices in which the reverse process takes place. Due to quantum confinement, a smaller nanocrystal has a larger band gap, which makes better use of higher energy photons. Under experimental conditions these species are typically cadmium rich (and positively charged) and must be passivated using negatively charged X-type ligands e.g. Cd16Se10Cl12 and Cd59Se50(CH3COO)18. Motivated by experimental studies, we will examine the effect on charge mobility of doping small CdSe nanocrystals with silver atoms. Also, we will examine the magnetic properties of CdSe nanocrystals doped with a high-spin atom such as Mn, Fe, or Co. iii) How can we optimize the magnetic properties of novel single-ion magnets? Single molecule magnets (SMMs) have potential for use as quantum bits (qubits) in quantum information processing devices. SMMs typically have six to twelve high-spin atoms connected to one another via oxygen or nitrogen bridging atoms. Our primary objective is to gain insight into a subset of SMMs called single ion magnets (SIMs) which are usually comprised of a ligand-protected high-spin atom that is trapped in a crystal lattice with fixed SIM-SIM distances. If a gold cluster is doped with a high-spin atom such as Mn, Fe, Co then, due to the greater electronegativity of Au, the high-spin atom will have a positive charge. These species are therefore a novel type of "free standing" SIM that could be arrayed on a surface with optimum SIM-SIM distances. This could result in a qubit with unique functionality.
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Metal Clusters, Metal Nanostructures, Semiconductor Nanocrystals, Single-Ion Magnets
  • 批准号:
    RGPIN-2021-03176
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.75万
  • 财政年份:
    2021
  • 负责人:
    Hamilton, Ian
  • 依托单位:
Semiconductor Nanocrystals, Gold Nanostructures, Toxic Metals in the Environment
  • 批准号:
    RGPIN-2015-05692
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.46万
  • 财政年份:
    2019
  • 负责人:
    Hamilton, Ian
  • 依托单位:
Semiconductor Nanocrystals, Gold Nanostructures, Toxic Metals in the Environment
  • 批准号:
    RGPIN-2015-05692
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.46万
  • 财政年份:
    2018
  • 负责人:
    Hamilton, Ian
  • 依托单位:
Semiconductor Nanocrystals, Gold Nanostructures, Toxic Metals in the Environment
  • 批准号:
    RGPIN-2015-05692
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.46万
  • 财政年份:
    2017
  • 负责人:
    Hamilton, Ian
  • 依托单位:
国内基金
海外基金
The formation and evolution of planetary systems in dense star clusters
  • 批准号:
    11043007
  • 项目类别:
    专项基金项目
  • 资助金额:
    10.0万元
  • 批准年份:
    2010
  • 负责人:
    柯文采
  • 依托单位: