Hydrogen-Bonding Assembly of Monolayer Metallic Silver Nanocluster Superlattices Improving Guest Fluorescence

Abstract Constructing ordered plasmonic superstructures with sub-2 nm interparticle gaps via spontaneous self-assembly remains a formidable challenge; however, it is the key to generating strong electromagnetic fields for molecular optical amplification. Herein, we report the synthesis and structure determination of a metallic all-alkynyl-protected silver nanocluster, (Et4N)3[Ag215(ArC≡C)96] (Ag215, ArC≡C = 4-ethynyl-α,α,α-trifluorotoluene), featuring a shell-by-shell Ag13@Ag42@Ag86@Ag74 metal kernel. Remarkably, directional C–H···F hydrogen bonds between neighboring nanoclusters drive the spontaneous self-assembly of Ag215 into a micrometer-scale monolayer hexagonal close-packed (hcp) superlattice with exceptionally uniform interparticle nanogaps of ∼1.32 nm-an ideal regime for maximizing near-field plasmonic coupling. This well-defined superlattice boosts the fluorescence of various guest dyes (eosin Y, rhodamine 6G, rhodamine B, and methylene blue) by 7.4- to 12.8-fold. In addition, owing to its high molar extinction coefficient and metallic nature, Ag215 exhibited exceptional photothermal performance with a temperature rise of ∼35.6 °C and a conversion efficiency of 67.7% under 660 nm irradiation (0.5 W, 15.0 μM). To the best of our knowledge, this is the first example of an atomically precise two-dimensional monolayer superlattice self-assembled from metallic nanoclusters. The exceptional structural uniformity and functional reproducibility render these nanogap-enhanced optical probes promising platforms for advanced sensing, imaging, and photothermal therapeutics.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-09-19
DOI
https://doi.org/10.1021/acs.inorgchem.6c03857
Primary Topic
Nanocluster Synthesis and Applications
Type
article
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Hydrogen-Bonding Assembly of Monolayer Metallic Silver Nanocluster Superlattices Improving Guest Fluorescence

Hui-na Liao, Nian-Ling Li, Xian‐Kai Wan, Quan‐Ming Wang et al.
Inorganic Chemistry
Nanocluster Synthesis and Applications
article

Hydrogen-Bonding Assembly of Monolayer Metallic Silver Nanocluster Superlattices Improving Guest Fluorescence

Hui-na Liao, Nian-Ling Li, Xian‐Kai Wan, Quan‐Ming Wang, Qi Dai, Jing-Hao Zhuang, Pei-Juan Dai, Xi Chen
article en

Abstract

Abstract Constructing ordered plasmonic superstructures with sub-2 nm interparticle gaps via spontaneous self-assembly remains a formidable challenge; however, it is the key to generating strong electromagnetic fields for molecular optical amplification. Herein, we report the synthesis and structure determination of a metallic all-alkynyl-protected silver nanocluster, (Et4N)3[Ag215(ArC≡C)96] (Ag215, ArC≡C = 4-ethynyl-α,α,α-trifluorotoluene), featuring a shell-by-shell Ag13@Ag42@Ag86@Ag74 metal kernel. Remarkably, directional C–H···F hydrogen bonds between neighboring nanoclusters drive the spontaneous self-assembly of Ag215 into a micrometer-scale monolayer hexagonal close-packed (hcp) superlattice with exceptionally uniform interparticle nanogaps of ∼1.32 nm-an ideal regime for maximizing near-field plasmonic coupling. This well-defined superlattice boosts the fluorescence of various guest dyes (eosin Y, rhodamine 6G, rhodamine B, and methylene blue) by 7.4- to 12.8-fold. In addition, owing to its high molar extinction coefficient and metallic nature, Ag215 exhibited exceptional photothermal performance with a temperature rise of ∼35.6 °C and a conversion efficiency of 67.7% under 660 nm irradiation (0.5 W, 15.0 μM). To the best of our knowledge, this is the first example of an atomically precise two-dimensional monolayer superlattice self-assembled from metallic nanoclusters. The exceptional structural uniformity and functional reproducibility render these nanogap-enhanced optical probes promising platforms for advanced sensing, imaging, and photothermal therapeutics.

Inorganic Chemistry
Lanzhou University of Technology (CN), Sichuan University (CN), Sichuan University of Science and Engineering (CN), Lanzhou University (CN), Tsinghua University (CN)
Openalex Percentile: Top 24%
Nanocluster Synthesis and Applications
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