等离子体增强自组装人工捕光纳米天线的光物理学。

IF 6.2 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Elizabeth Donahue, Tomáš Malina, Emma Smith, Jakub Pšenčík, Emily A Sprague-Klein
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引用次数: 0

摘要

高效人工光收集天线的设计对于太阳能的广泛使用至关重要。天然光合系统提供了宝贵的灵感,但许多依赖于复杂的色素-蛋白质相互作用,光谱覆盖有限,这对合理设计提出了挑战。仿叶绿体是一种受绿色光合细菌启发的自组装色素聚集体,具有结构简单、灵活可调性和通过色素-色素相互作用产生强激子耦合的特点。然而,这些色素聚集体在绿色和近红外区域的吸收有限,并且与其他光收集系统类似,在高供体浓度下降低了能量转移效率。克服这些限制的一个有希望的策略是等离子体纳米粒子的集成,它可以增强局部电磁场,增加光谱覆盖范围,并使新的能量途径易于获得。虽然等离子体增强在色素-蛋白复合物(如光系统I和光收获复合物(lhc))中已经被广泛研究,但其在色素-色素自组装系统中的应用仍未被广泛探索。这一观点介绍了利用仿叶绿体进行仿生光收集设计的最新进展,并探讨了这些系统中等离子体增强光物理的潜力。我们研究了叶绿体的结构和它们的人工模拟物,以了解色素-色素相互作用在促进高效能量转移中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Photophysics of plasmonically enhanced self-assembled artificial light-harvesting nanoantennas.

Photophysics of plasmonically enhanced self-assembled artificial light-harvesting nanoantennas.

Photophysics of plasmonically enhanced self-assembled artificial light-harvesting nanoantennas.

Photophysics of plasmonically enhanced self-assembled artificial light-harvesting nanoantennas.

The design of efficient artificial light-harvesting antennas is essential for enabling the widespread use of solar energy. Natural photosynthetic systems offer valuable inspiration, but many rely on complex pigment-protein interactions and have limited spectral coverage, which pose challenges for rational design. Chlorosome mimics, which are self-assembling pigment aggregates inspired by green photosynthetic bacteria, offer structural simplicity, flexible tunability, and strong excitonic coupling through pigment-pigment interactions. However, these pigment aggregates suffer from limited absorption in the green and near-infrared regions and, similarly to other light-harvesting systems, reduced energy transfer efficiency at high donor concentrations. One promising strategy to overcome these limitations is the integration of plasmonic nanoparticles, which enhance local electromagnetic fields, increase spectral coverage, and make new energetic pathways accessible. Although plasmonic enhancement has been widely studied in pigment-protein complexes like Photosystem I and light-harvesting complexes (LHCs), its application to pigment-pigment self-assembled systems remains largely unexplored. This perspective presents recent advances in biomimetic light-harvesting design with chlorosome mimics and explores the potential for plasmonic enhancement of photophysics in these systems. We examine the structure of chlorosomes and their artificial mimics to understand the role of pigment-pigment interactions in facilitating highly efficient energy transfer.

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来源期刊
Communications Chemistry
Communications Chemistry Chemistry-General Chemistry
CiteScore
7.70
自引率
1.70%
发文量
146
审稿时长
13 weeks
期刊介绍: Communications Chemistry is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the chemical sciences. Research papers published by the journal represent significant advances bringing new chemical insight to a specialized area of research. We also aim to provide a community forum for issues of importance to all chemists, regardless of sub-discipline.
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