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June 15, 2026ChemSusChem1 citationsOpen Access

Mechanochemical S N Ar on Phthalonitriles: Distinct Reactivity and Selectivity in One‐Pot Synthesis for Greener Phthalocyanines

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ORObed Rodriguez‐PerezAalto UniversityDLDaniel LangerreiterAalto UniversitySKSandra KaabelMaterial Sciences (United States)

Key Points

  • This research aims to develop a mechanochemical approach for synthesizing phthalonitriles and phthalocyanines, focusing on sustainability and efficiency.
  • Conducted mechanochemical S N Ar reactions utilizing liquid-assisted grinding (LAG) with systematic optimization of conditions.
  • Employed a wide range of seven nucleophiles and nine electrophiles to create various phthalonitrile products.
  • Integrated mechanochemical synthesis with solid-state cyclotetramerization for enhanced product versatility.
  • Achieved high-yielding reactions with η values as low as 0.03 µL mg −1, significantly improving sustainability.
  • Provided near-quantitative conversions of mono-, di-, and tetrasubstituted phthalonitriles without the need for chromatographic purification.
  • Demonstrated distinct reactivity, enabling controlled access to asymmetric phthalonitriles and diverse phthalocyanine architectures.

Abstract

Traditional syntheses of functionalized phthalonitriles and phthalocyanines (Pcs) rely on solution‐phase nucleophilic aromatic substitution (S N Ar) in high‐boiling polar aprotic solvents, raising sustainability and safety concerns. Herein, we establish mechanochemical S N Ar under liquid‐assisted grinding (LAG) as a robust and versatile platform for the solvent‐minimized functionalization of phthalonitriles. Systematic optimization of base loading, ambient moisture, milling time, and LAG volume ( η ) enables highly reproducible, high‐yielding reactions at η values as low as 0.03 µL mg −1 , four orders of magnitude lower than traditional synthesis. A broad scope of seven nucleophiles and nine electrophiles gives mono‐, di‐, and tetrasubstituted phthalonitriles, typically in near‐quantitative conversion and without chromatographic purification. Mechanochemical conditions also unlock distinct reactivity. Product distributions in pyridyloxy systems can be tuned between keto‐ and enol‐derived isomers by adjusting η , and optimized reaction of 4,5‐dichlorophthalonitrile affords quantitative and highly selective monosubstitution, enabling controlled access to asymmetric phthalonitriles. The mechanochemical synthesis of phthalonitriles is directly integrated with solid‐state cyclotetramerization, either in sequential steps or in a one‐pot S N Ar–cyclotetramerization protocol, yielding a broad range of Pc substitution patterns and chemistries. The one‐pot process provides a scalable and sustainable route to advanced Pc architectures.

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Cite This Study

Rodriguez‐Perez et al. (2026) studied this question.

synapsesocial.com/papers/6a2f984ba1cfeec4908295bdhttps://doi.org/10.1002/cssc.70808
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