Abstract
The agrochemical run-off associated with crop control is an unintended consequence of droplet rebound from plant foliage, which negatively affects crop performance and the environment. This is most critical in water-based formulations delivered on plant surfaces that are typically waxy and nonwetting. This study introduces an alternative to synthetic surfactants and high molecular weight polymers that are used as spreading agents for agrochemicals. Specifically, biopolymeric adjuvants (hemicelluloses and oligomeric lignin) extracted from wood by pressurized hot water are shown for their synergistic pinning capacity and surface activity that can effectively suppress droplet rebound from hydrophobic surfaces. Hemicellulose and lignin mixtures, alongside several model compounds, are investigated for understanding the dynamics of droplet impact and its correlation with biomacromolecule formations. The benefit of utilizing lean solutions (0.1 wt.% concentration) is highlighted for reducing droplet rebounding from leaves, outperforming synthetic systems in current use. For instance, a tenfold deposition improvement is demonstrated on citrus leaves, because of a significantly suppressed droplet roll-off. These results establish the excellent prospects of wood extracts to improve crop performance.
| Original language | English |
|---|---|
| Article number | 2416686 |
| Journal | Advanced Science |
| Volume | 12 |
| Issue number | 17 |
| DOIs | |
| Publication status | Published - 8 May 2025 |
| MoE publication type | A1 Journal article-refereed |
Funding
This work was supported by the European Research Council, H2020 (Project No. 788489), the Canada Excellence Research Chairs, Government of Canada (CERC-2018-00006), the Academy of Finland's Flagship Programme \u2013 Competence Center for Materials Bioeconomy, FinnCERES (Project Nos. 318890 and 318891), and the Academy of Finland, Life-Inspired Hybrid Materials (2022-2029) (Project No. 346109). Natural Resources Institute Finland (Luke) supported this work from Project Positive Fibers (41007-00212300). This work was supported by the European Research Council, H2020 (Project No. 788489), the Canada Excellence Research Chairs, Government of Canada (CERC\u20102018\u201000006), the Academy of Finland's Flagship Programme \u2013 Competence Center for Materials Bioeconomy, FinnCERES (Project Nos. 318890 and 318891), and the Academy of Finland, Life\u2010Inspired Hybrid Materials (2022\u20102029) (Project No. 346109). Natural Resources Institute Finland (Luke) supported this work from Project Positive Fibers (41007\u201000212300).