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CAREER: Unraveling Excitation-Energy Transfer Processes in Excitonic Light-Harvesting Systems

CAREER: Unraveling Excitation-Energy Transfer Processes in Excitonic Light-Harvesting Systems
职业生涯:揭示激子光捕获系统中的激发能量转移过程
批准号:
1752475
负责人:
Dorthe Eisele
金额:
$72.5万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-05-15 至 2024-04-30

项目摘要

项目成果

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中文摘要
翻译
在植物中发现的光收集复合体是一个复杂的分子集合,它吸收阳光并将其能量输送到中心位置,在那里将其转化为可用燃料。这种太阳能天线的效率是惊人的,它可能是自然界最壮观的分子结构之一。虽然这种捕光复合体已经得到了广泛的研究,但其高效率的起源仍然是一个谜。这个问题具有挑战性。捕光复合体不仅由许多单独的分子组成,而且结构不是刚性的,分子成分不断移动。这项动议在促进(或阻碍)能源运输方面的作用尚不清楚。在美国国家科学基金会化学部高分子、超分子和纳米化学项目的支持下,纽约城市学院的艾赛尔教授正在研究生物启发纳米材料,以阐明自然?S高效能量传输的秘密。艾赛尔教授和她的学生一起工作,正在合成新的纳米结构分子组件,模仿大自然的捕光复合体的特征。然后,他们使用复杂的近场扫描光学显微镜观察通过组件的能量流动,目的是了解结构波动如何影响能量传输。该项目可能会深刻地影响我们对自然光合作用系统的理解,并可能为设计用于太阳能转换的高效人工系统铺平道路。此外,该项目正在培训包括纳米科学、光谱学和光学显微镜在内的广泛领域的下一代科学家。通过外展活动,Eisele教授和她的学生与初中生和高中生合作,其中许多学生来自历史上代表性不足的少数群体,以制作短片,突出纳米科学的挑战和机遇,从日常应用到超高分辨率纳米成像的最新研究。从概念上讲,更好地理解生物启发纳米材料中的激发能量转移(EET)过程需要模型系统,允许彻底测试当前能量传输现象的理论模型。为此,Eisele教授正在合成基于单体的明确定义的模型体系,如两亲性菁染料和卟啉染料。在溶液中,单体自组装成超分子纳米管,显示出类似于天然捕光络合物中的集体光学性质(激子)。然后将纳米管组件包裹在透明(非激子)材料中,以模拟自然捕光复合体周围的蛋白质。用近场扫描光学显微镜(NSOM)技术研究了单个纳米管的结构和光学性质,并用飞秒泵浦探测技术跟踪了EET过程。该项目还将泵浦-探测光谱仪与NSOM方法相结合,以便能够直接观察单个结构中的能量传输。实验结果与超分子结构的蒙特卡罗计算机模拟相辅相成。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
The light-harvesting complex found in plants is a complex assembly of molecules that absorbs sunlight and funnels its energy to a central location where it is converted into useable fuels. The efficiency of this solar antenna is remarkable, and it is perhaps one of Nature's most spectacular molecular architectures. While the light-harvesting complex has been studied extensively, the origin of its high efficiency has remained a mystery. The problem is challenging. The light-harvesting complex not only consists of many individual molecules, but the structure is not rigid, and the molecular components are continually moving. The role that this motion plays in facilitating (or impeding) energy transport is unclear. Through support from the Macromolecular, Supramolecular and Nanochemistry Program of the NSF Division of Chemistry, Professor Eisele at The City College of New York (CCNY) is studying bio-inspired nanomaterials to elucidate Nature?s secret to efficient energy transport. Working together, Professor Eisele and her students are synthesizing new nanostructured molecular assemblies that mimic the features of the Nature's light-harvesting complex. They then watch the flow of energy through the assembly using sophisticated near-field scanning optical microscopies with the goal of understanding how structural fluctuations affect energy transport. The project could profoundly impact our understanding of natural photosynthetic systems, and could pave the way towards the design of efficient artificial systems for solar energy conversion applications. In addition, the project is training the next generation of scientists in a broad range fields including nanoscience, spectroscopy and optical microscopy. Through outreach activities, Professor Eisele and her students are working with middle- and high-school students, many from historically underrepresented minority groups, to produce short videos that highlight the challenges and opportunities of nanoscience, from everyday applications to the latest research in super-high resolution nanoimaging.Conceptually, achieving a better understanding of excitation energy transfer (EET) processes in bio-inspired nanomaterials requires model systems that allow thorough testing of current theoretical models of energy transport phenomena. To this end, Professor Eisele is synthesizing well-defined model systems based on monomers such as amphiphilic cyanine dyes and porphyrin dyes. In solution the monomers self-assemble into supramolecular nanotubes that show collective optical properties (excitons) similar to the optical properties found in natural light-harvesting complexes. The nanotube assemblies are then encapsulated in transparent (non-excitonic) materials to mimic the surrounding proteins of the natural light-harvesting complex. The structural and optical properties of individual nanotubes are studied using near field scanning optical microscopy (NSOM) techniques, and the EET process is followed using femtosecond pump-probe techniques. The project is also integrating the pump-probe spectroscopies with NSOM methods, to enable direct observation of energy transport in an individual structure. The experimental results are complemented with Monte Carlo computer simulations of the supramolecular structure.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(1)
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会议论文
DOI: 10.1038/s41557-020-00563-4
发表时间: 2020-11-16
期刊: NATURE CHEMISTRY
影响因子: 21.8
作者: [Ng, Kara, Webster, Megan, Eisele, Dorthe M.]
通讯作者: Eisele, Dorthe M.
MRI: Acquisition of a Multi-functional Near-field Scanning Optical Microscopy (NSOM) System to Establish a Cross-disciplinary Nano-imaging/spectroscopy Laboratory at CCNY
  • 批准号:
    1531859
  • 项目类别:
    Standard Grant
  • 资助金额:
    $37.62万
  • 财政年份:
    2015
  • 负责人:
    Dorthe Eisele
  • 依托单位:
海外基金