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April 3, 20260 citationsOpen Access

Beyond Hydrogen Bonding: π∙∙∙π Stacking Directed Self-Assembly of Carboxylic Acid Clusters in the Gas Phase

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JHJingling HongMSMelanie SchnellMZMingfei Zhou

Key Points

  • This research aims to explore the geometries and structural formation of carboxylic acid clusters in the gas phase.
  • Utilized high-resolution microwave spectroscopy to analyze carboxylic acid clusters.
  • Examined formic acid and propiolic acid clusters, identifying trimers and tetramers.
  • Analyzed 34 isotopologues to confirm cluster structures.
  • Applied symmetry-adapted perturbation theory and many-body energy decomposition analyses.
  • Identified three trimers and two tetramers of carboxylic acid clusters.
  • Found that trimers depend on hydrogen bonding, while tetramers utilize π-π stacking for stability.
  • Revealed a transition from single-layer to double-layer architectures in tetramers.

Abstract

Carboxylic acids critically influence atmospheric chemistry by modulating acidity, new particle formation, and aerosol growth. The hydrogen-bonding capability of the - COOH group drives the assembly of structurally diverse gas-phase clusters with atmospheric species. Despite their importance, experimental data on larger carboxylic acid clusters remain limited, and computational predictions of their global minimum structures lack consensus. Here, we employ high-resolution microwave spectroscopy to determine the geometries of formic acid and propiolic acid clusters, identifying three trimers and two tetramers. A total of 34 isotopologues were analyzed to robustly confirm the cluster structures. Symmetry-adapted perturbation theory (SAPT) and many-body energy decomposition (MBE) analyses demonstrate a fundamental transition in stabilization mechanisms: trimers rely on conventional hydrogen bonds, whereas tetramers exhibit cooperative π-π stacking interactions that drive a structural transformation from single-layer to double-layer architectures. These findings resolve long-standing ambiguities in cluster configurations and establish essential benchmarks for modeling carboxylic acid-driven atmospheric nucleation processes.

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Cite This Study

Hong et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f005a333a821460dbedhttps://doi.org/10.3204/pubdb-2025-04684
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