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April 20, 2026ACS Nano2 citationsOpen Access

Single Ni Atoms Drive Carboxyl Deprotonation in Metal–Organic Chains

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SMSimone MeariniFAFabian AuerMLMaximilian Lasshofer

Key Points

  • The research aims to elucidate the mechanisms by which Ni facilitates carboxyl deprotonation in metal-organic coordination chains.
  • Utilized scanning tunneling microscopy to observe the formation of metal-organic chains.
  • Employed X-ray photoelectron spectroscopy to analyze the oxidation state of Ni centers.
  • Conducted valence band spectroscopy to investigate electronic reorganization during coordination.
  • Nickel promotes the deprotonation of carboxyl groups on terephthalic acid, resulting in linear coordination chains.
  • Ni centers stabilize in the Ni(I) oxidation state via charge transfer, forming deprotonated carboxylate.
  • Electronic reorganization through hybrid states between Ni and terephthalic acid is confirmed by theoretical models.

Abstract

Understanding how charge transfer and ligand activation processes govern metal-organic coordination at surfaces is crucial for controlling on-surface synthesis and the formation of low-dimensional architectures. Here, we show that Ni promotes the deprotonation of the carboxyl groups of terephthalic acid (TPA) on Ag(100), leading to the formation of linear metal-organic coordination chains. Scanning tunneling microscopy reveals that these chains emerge from preassembled hydrogen-bonded TPA stripes. X-ray photoelectron spectroscopy identifies stabilization of the Ni centers in the Ni(I) oxidation state through a single-electron charge transfer process, accompanied by the formation of deprotonated carboxylate species. Valence band spectroscopy reveals a coordination-induced electronic reorganization between Ni and TPA through the emergence of hybrid states, in agreement with complementary theoretical modeling. Together, these findings identify charge-transfer-driven deprotonation as the central mechanism governing the formation of linear metal-organic chains.

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Cite This Study

Mearini et al. (2026) studied this question.

synapsesocial.com/papers/69e5c27e03c2939914028ad0https://doi.org/10.1021/acsnano.6c01444
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