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February 21, 2026Industrial Crops and Products2 citationsOpen Access

Pyrolytic wood vinegar from industrial crop residues as a bio-based fungicide for Fusarium control in banana cultivation

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IPIndra PurnamaUniversitas Lancang KuningNSNoor Baity SaidiUniversiti Putra MalaysiaAMAnisa MutamimaRiau University

Key Points

  • The aim is to evaluate the antifungal effectiveness of wood vinegar derived from various crop residues against Fusarium wilt in banana cultivation.
  • Produced wood vinegar via slow pyrolysis at 210 °C from four feedstocks: coconut shell, palm kernel shell, acacia wood, and mahang wood.
  • Utilized gas chromatography–mass spectrometry (GC–MS) to analyze chemical composition.
  • Conducted in vitro assays and greenhouse trials to assess antifungal activity and plant growth performance.
  • High levels of acetic acid and phenol were found in coconut and palm kernel vinegar.
  • Complete inhibition of Fusarium growth was achieved at 0.8% for palm kernel and 1.2% for coconut shell vinegar.
  • Greenhouse trials reduced the Disease Severity Index (DSI) to 4–8% compared to 54% in control.
  • Coconut shell vinegar promoted plant growth with height increases of +22.1 cm and leaf emergence of +2.9.

Abstract

The thermochemical valorization of industrial crop residues into bio-based inputs offers a sustainable pathway for waste utilization and crop protection. In this study, we evaluated the antifungal efficacy of wood vinegar (pyroligneous acid) produced via slow pyrolysis at 210 °C from four lignocellulosic feedstocks—coconut shell ( Cocos nucifera ), palm kernel shell ( Elaeis guineensis ), acacia wood ( Acacia mangium ), and mahang wood ( Macaranga gigantea )—against Fusarium oxysporum f. sp. cubense Tropical Race 4 ( Foc TR4), the causal agent of Fusarium wilt in banana. Gas chromatography–mass spectrometry (GC–MS) revealed that palm kernel shell and coconut shell vinegars contained high levels of acetic acid, phenol, and furfural. In vitro assays, supported by standardized turbidity scoring, showed complete inhibition at 0.8 % (palm kernel) and 1.2 % (coconut shell), with fungicidal activity confirmed by the absence of regrowth on agar media. Greenhouse trials with 2 % soil drench applications over 11 weeks significantly suppressed wilt, reducing the Disease Severity Index (DSI) to 4–8 % compared with 54 % in the inoculated control. Coconut shell vinegar further enhanced plant performance, producing the highest gains in height (+22.1 cm), leaf emergence (+2.9), and pseudostem diameter (+0.90 cm). The innovative contribution of this study lies in demonstrating, for the first time, that underutilized tropical residues can yield low-toxicity fungicides effective at < 2 % concentrations, supported by integrated chemical, in vitro , and in vivo evidence. These findings underscore the potential of wood vinegar as a scalable, eco-friendly biopesticide while advancing circular bioeconomy strategies for tropical agriculture. • Wood vinegar from four tropical crop residues via controlled pyrolysis. • GC–MS showed acetic acid– and phenolic-rich profiles linked to antifungal activity. • Coconut shell and palm kernel vinegar suppressed Foc TR4 at < 2 % concentration. • Greenhouse DSI and turbidity scoring confirmed wilt suppression and growth promotion. • Supports low-toxicity fungicide alternatives within circular bioeconomy strategies.

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Cite This Study

Purnama et al. (2026) studied this question.

synapsesocial.com/papers/69994ba9873532290d01fc6dhttps://doi.org/10.1016/j.indcrop.2026.122909
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