Lone Pair–π Interaction‐Assisted Oxidative Conversion of SO 2 to Sulfate by a Phenyl‐Appended Redox‐Active Cu(II) Koneramine Complex

In this study, we have reported an approach to convert SO 2 gas into sulfate dianions using a phenyl‐appended koneramine complex. The Cu(II) koneramine complex [Cu(L Ph )Cl 2 ] was designed such that the incorporation of the phenyl moiety on the tertiary nitrogen of the koneramine backbone could facilitate weak interactions with sulfur dioxide (SO 2 ). At the same time, the redox‐active copper(II) ion enables electron transfer to SO 2 upon addition of ferrocene, thereby forming sulfate dianions in the presence of atmospheric oxygen at room temperature. Control reactions were performed with [Zn(L Ph )Cl 2 ] to establish the necessity of a redox‐active metal for facilitating electron transfer. Furthermore, investigations with carbon disulfide (CS 2 ) showed no conversion by [Cu(L Ph )Cl 2 ]. Control experiments employing electronic absorption spectroscopy, cyclic voltammetry, and electrospray ionization spectrometry were conducted to provide mechanistic insights into these processes.

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Publication Details

Journal
European Journal of Inorganic Chemistry
Published
2026-10-04
DOI
https://doi.org/10.1002/ejic.70327
Primary Topic
Metal-Catalyzed Oxygenation Mechanisms
Type
article
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article

Lone Pair–π Interaction‐Assisted Oxidative Conversion of SO 2 to Sulfate by a Phenyl‐Appended Redox‐Active Cu(II) Koneramine Complex

Raja Angamuthu, Neha Kumari, Shruthi Dinesh, Ashutosh Vishwakarma
European Journal of Inorganic Chemistry
Metal-Catalyzed Oxygenation Mechanisms
article

Lone Pair–π Interaction‐Assisted Oxidative Conversion of SO 2 to Sulfate by a Phenyl‐Appended Redox‐Active Cu(II) Koneramine Complex

Raja Angamuthu, Neha Kumari, Shruthi Dinesh, Ashutosh Vishwakarma
article en

Abstract

In this study, we have reported an approach to convert SO 2 gas into sulfate dianions using a phenyl‐appended koneramine complex. The Cu(II) koneramine complex [Cu(L Ph )Cl 2 ] was designed such that the incorporation of the phenyl moiety on the tertiary nitrogen of the koneramine backbone could facilitate weak interactions with sulfur dioxide (SO 2 ). At the same time, the redox‐active copper(II) ion enables electron transfer to SO 2 upon addition of ferrocene, thereby forming sulfate dianions in the presence of atmospheric oxygen at room temperature. Control reactions were performed with [Zn(L Ph )Cl 2 ] to establish the necessity of a redox‐active metal for facilitating electron transfer. Furthermore, investigations with carbon disulfide (CS 2 ) showed no conversion by [Cu(L Ph )Cl 2 ]. Control experiments employing electronic absorption spectroscopy, cyclic voltammetry, and electrospray ionization spectrometry were conducted to provide mechanistic insights into these processes.

European Journal of Inorganic Chemistry
Indian Institute of Technology Kanpur (IN)
Openalex Percentile: Top 27%
Metal-Catalyzed Oxygenation Mechanisms
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Lone Pair–π Interaction‐Assisted Oxidative Conversion of SO 2 to Sulfate by a Phenyl‐Appended Redox‐Active Cu(II) Koneramine Complex — Raja Angamuthu, Neha Kumari, et al. · European Journal of Inorganic Chemistry (2026) | TGRS Research Map | TGRS