Selective Ultrafast Excitation and Dephasing of Gap Plasmons into Hot Carriers in Structural Color Generation

Abstract Plasmon-induced hot-carriers generated through Landau damping underpin applications in plasmonic optoelectronics, energy conversion, and photocatalysis. However, it remains unclear whether these carriers retain the spatial localization of their parent plasmon modes or rapidly lose this spatial memory through ultrafast scattering and transport. Here, we experimentally probe the spatial and temporal dynamics of plasmon-induced hot-carriers in a strongly confined plasmonic structural color consisting of disordered aluminum nanoparticle ensembles on near-field cavities. Strong interparticle coupling produces hybridized and localized gap plasmon modes with intense nanoscale electromagnetic confinement, which we directly visualize using scattering-type scanning near-field optical microscopy. Ultrafast pump–probe measurements selectively excite a homogeneously broadened sub-ensemble of plasmonic modes, enabling indirect tracking of pump-generated, plasmon-induced hot-carrier dynamics. We observe that hot-carriers undergo only partial spatial delocalization and retain signatures of the initial plasmonic localization for hundreds of picoseconds. The perturbed sub-ensemble reaches maximum line widths of 0.54 ± 0.06 eV (0.36 ± 0.05 eV) under 630 nm (700 nm) excitation. On a phenomenological localization scale from 0 (localized) to 1 (fully delocalized), this corresponds to 0.35 ± 0.10 and 0.09 ± 0.08 for 630 and 700 nm excitation, respectively. The wavelength-dependent fraction shows that the degree of preserved localization is optically tunable, set by the carrier energy. This persistence of spatial memory, likely arising from disorder-induced scattering within the nanoparticle ensemble, reveals an unexpected spatial dimension of hot-carrier dynamics and highlights the role of plasmonic confinement and structural disorder in governing nanoscale energy flow, with implications for hot-carrier-based optoelectronics.

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Publication Details

Journal
ACS Nano
Published
2026-10-02
DOI
https://doi.org/10.1021/acsnano.6c12999
Primary Topic
Plasmonic and Surface Plasmon Research
Type
article
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article

Selective Ultrafast Excitation and Dephasing of Gap Plasmons into Hot Carriers in Structural Color Generation

Manobina Karmakar, Ayon Jyoti Karmakar, Mahdi Soudi, Pablo Cencillo‐Abad et al.
ACS Nano
Plasmonic and Surface Plasmon Research
article

Selective Ultrafast Excitation and Dephasing of Gap Plasmons into Hot Carriers in Structural Color Generation

Manobina Karmakar, Ayon Jyoti Karmakar, Mahdi Soudi, Pablo Cencillo‐Abad, Tianyi Guo, Aritra Biswas, Debashis Chanda, Prasanta Kumar Datta
article en

Abstract

Abstract Plasmon-induced hot-carriers generated through Landau damping underpin applications in plasmonic optoelectronics, energy conversion, and photocatalysis. However, it remains unclear whether these carriers retain the spatial localization of their parent plasmon modes or rapidly lose this spatial memory through ultrafast scattering and transport. Here, we experimentally probe the spatial and temporal dynamics of plasmon-induced hot-carriers in a strongly confined plasmonic structural color consisting of disordered aluminum nanoparticle ensembles on near-field cavities. Strong interparticle coupling produces hybridized and localized gap plasmon modes with intense nanoscale electromagnetic confinement, which we directly visualize using scattering-type scanning near-field optical microscopy. Ultrafast pump–probe measurements selectively excite a homogeneously broadened sub-ensemble of plasmonic modes, enabling indirect tracking of pump-generated, plasmon-induced hot-carrier dynamics. We observe that hot-carriers undergo only partial spatial delocalization and retain signatures of the initial plasmonic localization for hundreds of picoseconds. The perturbed sub-ensemble reaches maximum line widths of 0.54 ± 0.06 eV (0.36 ± 0.05 eV) under 630 nm (700 nm) excitation. On a phenomenological localization scale from 0 (localized) to 1 (fully delocalized), this corresponds to 0.35 ± 0.10 and 0.09 ± 0.08 for 630 and 700 nm excitation, respectively. The wavelength-dependent fraction shows that the degree of preserved localization is optically tunable, set by the carrier energy. This persistence of spatial memory, likely arising from disorder-induced scattering within the nanoparticle ensemble, reveals an unexpected spatial dimension of hot-carrier dynamics and highlights the role of plasmonic confinement and structural disorder in governing nanoscale energy flow, with implications for hot-carrier-based optoelectronics.

ACS Nano
University of Central Florida (US), Indian Institute of Technology Kharagpur (IN), Ludwig-Maximilians-Universität München (DE)
Affordable and clean energy
Openalex Percentile: Top 22%
Plasmonic and Surface Plasmon Research
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