One‐Step, High‐Yield Deconstruction of Kraft Lignin Into a Redox‐Active Small Molecule Using Sonicated Emulsive Water Microdroplets

ABSTRACT Lignin is an abundant biofeedstock that holds great potential for producing renewable organic chemicals, but its effective valorization is difficult due to low conversion rates and the need for harsh reaction conditions, which impact selectivity. Here, we introduce an alternative to catalyzed thermochemical and electrochemical methods consisting of a fast one‐step (∼20 min) uncatalyzed use of sonicated emulsive water microdroplets (SEWMs) to efficiently deconstruct Kraft lignin (∼14.2 kDa). We converted Kraft lignin selectively and in high yield (56% ± 5%) into SEMILL‐A (∼656 Da), composed of possible structural isomers of a redox‐active small molecule to which we assigned a structure consisting of substituted nitrophenyl units attached to a coumarin dicarboxylic acid core. Characterization of SEMILL‐A was carried out using infrared spectroscopy, 1D and 2D nuclear magnetic resonance spectroscopy, high‐resolution mass spectrometry, chromatography, and electrochemical analysis. We show the possibility of SEWMs to activate C─C bond cleavage and to facilitate reductive nitration in Kraft lignin and a model compound. Our study highlights a distinctive reactive environment within SEWMs where sonochemical excitation and redox microdroplet chemistry synergistically enable novel deconstructive pathways for biofeedstock valorization.

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Publication Details

Journal
Small
Published
2026-09-01
DOI
https://doi.org/10.1002/smll.74934
Citations
1
Primary Topic
Lignin and Wood Chemistry
Type
article
Field-Weighted Citation Impact
2.40
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article

One‐Step, High‐Yield Deconstruction of Kraft Lignin Into a Redox‐Active Small Molecule Using Sonicated Emulsive Water Microdroplets

Jonathan V. Sweedler, Joaquín Rodríguez‐López, Seth W. Croslow, Li Shi et al.
1 citations
Small
Lignin and Wood Chemistry
2.40
article

One‐Step, High‐Yield Deconstruction of Kraft Lignin Into a Redox‐Active Small Molecule Using Sonicated Emulsive Water Microdroplets

Jonathan V. Sweedler, Joaquín Rodríguez‐López, Seth W. Croslow, Li Shi, Charles M. Schroeder, Yuting Zhou, Jeffrey S. Moore, Armando Santiago-Carboney, Rajeev S. Assary, Hung V. Nguyen, Shaofeng Huang, Dong Ok Kim
article en
1 citations

Abstract

ABSTRACT Lignin is an abundant biofeedstock that holds great potential for producing renewable organic chemicals, but its effective valorization is difficult due to low conversion rates and the need for harsh reaction conditions, which impact selectivity. Here, we introduce an alternative to catalyzed thermochemical and electrochemical methods consisting of a fast one‐step (∼20 min) uncatalyzed use of sonicated emulsive water microdroplets (SEWMs) to efficiently deconstruct Kraft lignin (∼14.2 kDa). We converted Kraft lignin selectively and in high yield (56% ± 5%) into SEMILL‐A (∼656 Da), composed of possible structural isomers of a redox‐active small molecule to which we assigned a structure consisting of substituted nitrophenyl units attached to a coumarin dicarboxylic acid core. Characterization of SEMILL‐A was carried out using infrared spectroscopy, 1D and 2D nuclear magnetic resonance spectroscopy, high‐resolution mass spectrometry, chromatography, and electrochemical analysis. We show the possibility of SEWMs to activate C─C bond cleavage and to facilitate reductive nitration in Kraft lignin and a model compound. Our study highlights a distinctive reactive environment within SEWMs where sonochemical excitation and redox microdroplet chemistry synergistically enable novel deconstructive pathways for biofeedstock valorization.

Small
Argonne National Laboratory (US), University of Illinois Urbana-Champaign (US)
Openalex Percentile: Top 19%
Lignin and Wood Chemistry
2.40
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