シリカ系葉面肥料により、散布後のイネ葉の栄養保持性を向上 (Silica-Based Foliar Fertilizer Helps Rice Leaves Retain More Nutrients After Spraying)

2026-09-17 合肥物質科学研究院(HFIPS)

シリカナノ粒子を基盤とする葉面散布型窒素肥料「PSN0.2」を、中国科学院合肥物質科学研究院の研究チームが開発した。イネ葉はワックス質と微細・ナノ構造により撥水性が高く、散布した肥料液が広がりにくいうえ、雨で流失しやすい。研究チームは、窒素を担持したシリカナノ粒子に界面活性剤SDBSを添加。SDBSが液滴の初期拡展を促し、乾燥後は粗いシリカ粒子が葉面との付着を強化することで、肥料の耐雨性を高めた。模擬降雨2回後も窒素の71.33%が葉面に残存した。圃場試験では、土壌施肥との併用により、窒素投入量を10%削減しながらイネ収量を17.5%増加させた。葉面肥料の利用効率向上と農業における養分損失低減への応用が期待される。

シリカ系葉面肥料により、散布後のイネ葉の栄養保持性を向上 (Silica-Based Foliar Fertilizer Helps Rice Leaves Retain More Nutrients After Spraying)
Schematic illustration of the foliar adhesion mechanism. (Image by LI Long)

<関連情報>

適応型液滴-葉面固定とトポロジカルインターロッキングが相乗的にナノ農薬の送達を強化する Adaptive Droplet–Foliar Pinning and Topological Interlocking Synergistically Enhance Nanoagrochemical Delivery

Long Li;Wenchao Li;Qi Tang;Yue Li;Guozhong Wang
Environmental Science & Technology  Published:August 02, 2026
DOI:https://doi.org/10.1021/acs.est.6c09524

Abstract

The performance of nanoagrochemicals at nanobiointerfaces is limited by insufficient adhesion, especially on superhydrophobic leaves. Herein, we propose a paradigm to enhance foliar delivery via the synergistic optimization of pinning and topological interlocking effects. We designed spiny pollen-like silica, loaded with ammonium chloride, and synergistically incorporated 0.2 wt % sodium dodecylbenzenesulfonate (SDBS) to construct a composite fertilizer system designated PSN0.2. The system switched droplets from the nonwetting Cassie–Baxter state (contact angle >120°) to the high-adhesion Wenzel state (contact angle ≈ 50.2°), enabling adaptive penetration into leaf microstructures, enhancing pinning-induced interfacial adhesion, and suppressing droplet bouncing. Compared with traditional foliar nitrogen fertilizer (TFNF), PSN0.2 increased nitrogen retention on rice (Oryza sativa L.) leaves by 234% after application and 547% after simulated rainfall washing, demonstrating excellent rainfastness. Additionally, PSN0.2 enabled the uniform distribution of silica across leaf surfaces and enhanced adhesion through topological interlocking. Pot experiments showed PSN0.2 increased the dry biomass of nitrogen-deficient rice seedlings by 80% relative to TFNF. Field experiments demonstrated PSN0.2 increased rice yield by 17.5% over traditional fertilization practice (TFP), despite 10% less nitrogen input. This work provides a simple and effective approach for developing foliar fertilizers with strong adhesion and excellent rainfastness, advancing sustainable agriculture.

1202農芸化学
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