Quantifying Ultrafast Energy Transfer from Plasmonic Hot Carriers for Pulsed Photocatalysis on Nanostructures.

IF 15.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY ACS Nano Pub Date : 2024-07-23 Epub Date: 2024-07-11 DOI:10.1021/acsnano.4c01802
Andrea Schirato, Stephen Keith Sanders, Remo Proietti Zaccaria, Peter Nordlander, Giuseppe Della Valle, Alessandro Alabastri
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Abstract

Photocatalysis with plasmonic nanostructures has lately emerged as a transformative paradigm to drive and alter chemical reactions using light. At the surface of metallic nanoparticles, photoexcitation results in strong near fields, short-lived high-energy "hot" carriers, and light-induced heating, thus creating a local environment where reactions can occur with enhanced efficiencies. In this context, it is critical to understand how to manipulate the nonequilibrium processes triggered by light, as their ultrafast (femto- to picoseconds) relaxation dynamics compete with the process of energy transfer toward the reactants. Accurate predictions of the plasmon photocatalytic activity can lead to optimized nanophotonic architectures with enhanced selectivity and rates, operating beyond the intrinsic limitations of the steady state. Here, we report on an original modeling approach to quantify, with space, time, and energy resolution, the ultrafast energy exchange from plasmonic hot carriers (HCs) to molecular systems adsorbed on the metal nanoparticle surface while consistently accounting for photothermal bond activation. Our analysis, illustrated for a few typical cases, reveals that the most energetic nonequilibrium carriers (i.e., with energies well far from the Fermi level) may introduce a wavelength-dependence of the reaction rates, and it elucidates on the role of the carriers closer to the Fermi energy and the photothermally heated lattice, suggesting ways to enhance and optimize each contribution. We show that the overall reaction rates can benefit strongly from using pulsed illumination with the optimal pulse width determined by the properties of the system. Taken together, these results contribute to the rational design of nanoreactors for pulsed catalysis, which calls for predictive modeling of the ultrafast HC-hot adsorbate energy transfer.

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量化纳米结构上脉冲光催化的等离子体热载体的超快能量转移。
最近,利用等离子纳米结构进行光催化已成为利用光驱动和改变化学反应的变革性范例。在金属纳米粒子表面,光激发会产生强大的近场、短暂的高能 "热 "载流子和光诱导加热,从而创造出一种局部环境,在这种环境中,反应可以以更高的效率发生。在这种情况下,了解如何操纵光引发的非平衡过程至关重要,因为它们的超快(飞秒到皮秒)弛豫动力学会与向反应物的能量转移过程产生竞争。对等离子体光催化活性的准确预测可以优化纳米光子结构,提高选择性和速率,超越稳态的内在限制。在此,我们报告了一种独创的建模方法,该方法能以空间、时间和能量分辨率量化等离子体热载体 (HC) 与吸附在金属纳米粒子表面的分子系统之间的超快能量交换,同时还能持续考虑光热键活化。我们对一些典型案例的分析表明,能量最高的非平衡载流子(即能量远低于费米级)可能会引入反应速率的波长依赖性,并阐明了更接近费米能的载流子和光热加热晶格的作用,提出了增强和优化每种贡献的方法。我们的研究表明,使用脉冲光照可以显著提高整体反应速率,而最佳脉冲宽度则取决于系统的特性。综上所述,这些结果有助于合理设计脉冲催化的纳米反应器,这就需要对超快碳氢化合物-热吸附剂能量转移进行预测建模。
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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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