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April 12, 2026Dalton Transactions0 citationsOpen Access

Coordination flexibility and function in tris(pyrazolyl)methanesulfonate coordination chemistry

AFArantxa Forte-CastroJPJuana M. PérezIFIgnacio Fernández

Key Points

  • The study investigates the coordination chemistry of tris(pyrazolyl)methanesulfonate ligands and their functional capabilities.
  • Critical analysis of structure-property relationships in Tpms coordination modes
  • Assessment of stability and dimensionality of complexes
  • Evaluation of functions in various catalytic processes
  • Demonstrated coordination switching between κ3 and κ2 modes
  • Highlighted the roles of sulfonate groups in coordination
  • Identified potential applications in catalysis and polymer design

Abstract

Tris(pyrazolyl)methanesulfonate (Tpms) ligands constitute water-compatible scorpionate platforms that combine the facial N,N,N donor set of classical tris(pyrazolyl)borates (Tp) or tris(pyrazolyl)methane (Tpm) with an appended sulfonate functionality that enhances hydrolytic robustness, solubility in polar media and coordination flexibility. Over the last two decades, Tpms chemistry has evolved from simple alkali-metal salts into structurally diverse complexes spanning much of the periodic table, in which the sulfonate group may remain non-coordinating or engage as an auxiliary, often hemilabile, donor. This donor complementarity enables κ3/κ2 coordination switching, modulation of nuclearity, access to multinuclear and polymeric architectures, and fine control over metal-centre environments. In this Perspective, we critically analyse the emerging structure-property relationships that govern Tpms coordination modes, stability and dimensionality and assess how these features translate into enabling functions in oxidation and carbonylation catalysis, Lewis-acid-mediated C-C bond formation, biologically active silver and copper systems, and coordination polymer design. Finally, we outline key challenges and opportunities for the field, including rational ligand-design strategies to control sulfonate engagement, the need for mechanistic benchmarking under aqueous and green conditions, and the potential of Tpms ligands as general scaffolds for sustainable and functional inorganic chemistry.

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Cite This Study

Forte-Castro et al. (2026) studied this question.

synapsesocial.com/papers/69db37b04fe01fead37c5af7https://doi.org/10.1039/d6dt00354k
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