新しいナノキャリア、降雨後も葉面に鉄を保持するのに役立つ可能性(New Nanocarrier Could Help Keep Iron on Leaves After Rainfall)

2026-09-04 合肥物質科学研究院(HFIPS)

中国科学院合肥物質科学研究院の研究チームは、葉面散布した鉄を雨から守り、植物への吸収効率を高めるナノキャリア「NFCT」を開発した。鉄は光合成やクロロフィル生成に不可欠だが、アルカリ性土壌ではFe²⁺が難溶化するため、葉面散布が有効な一方、酸化や葉表面での濡れ広がりの悪さ、降雨による流失が課題だった。NFCTは、炭素ドットとFe²⁺を多孔質シリカに担持し、タンニン酸と鉄による薄い配位層で被覆する構造を持つ。これによりFe²⁺の酸化を抑え、葉面での展着性と耐雨性を向上させた。70.7 mm相当の人工降雨後も散布鉄の72%を保持し、EDTA-Feの26%を大きく上回った。鉄欠乏イネでは葉内鉄濃度やクロロフィル、バイオマス、細根形成が改善した。ただし、単一地点・単一季節の圃場試験では農業形質に有意差はなく、さらなる実証が必要としている。

新しいナノキャリア、降雨後も葉面に鉄を保持するのに役立つ可能性(New Nanocarrier Could Help Keep Iron on Leaves After Rainfall)
Schematic illustration of NECT construction and rainfast foliar iron delivery. (Image by TENG Guopeng)

<関連情報>

カーボンナノドットで安定化され、配位制御されたナノキャリアにより、雨に強い葉面散布鉄供給が可能になる Carbon dot-stabilized and coordination-gated nanocarriers enable rainfast foliar iron delivery

Guopeng Teng, Bowen Shen, Xue Yuan, Chunhui Zhou, Chengye Wang, Meng Gao, Yunhao Zhang, Bo Hu, Jia Zhang, Zhengyan Wu
Carbon  Available online: 29 August 2026
DOI:https://doi.org/10.1016/j.carbon.2026.122020

Highlights

  • Carbon dots stabilize ferrous iron through coordination and radical attenuation.
  • A tannic acid-iron shell gates pH-dependent nutrient transport.
  • Component controls resolve carbon-dot protection and shell-gated transport.
  • The carrier retains 72% of pre-rain total iron after simulated rainfall.
  • Controlled tests link the carrier to improved foliar iron nutrition in rice.

Abstract

Foliar iron delivery requires simultaneous control of ferrous-state stability, nutrient transport, and leaf-surface residence, yet these functions are rarely integrated within a single formulation. Here, we developed a carbon dot-stabilized and coordination-gated nanocarrier formulation (NFCT) by co-confining Fe2+ and carbon dots (CDs) within amino-functionalized mesoporous silica and depositing an external tannic acid-Fe (TA-Fe) coordination network. Electron spin resonance measurements and density functional theory calculations support complementary contributions of the CDs to reactive-oxygen-species attenuation and Fe2+ coordination, whereas the outer metal-phenolic network provides pH-dependent regulation of nutrient transport. Under the tested storage conditions, NFCT retained 93.0% of recoverable Fe2+ after 7 d and showed substantially greater recoverable Fe2+ availability under mildly acidic than near-neutral or alkaline conditions. On model waxy leaf surfaces, NFCT improved droplet spreading and achieved 72% of the pre-rain total-Fe deposit after a 70.7 mm simulated-rainfall challenge. These redox, transport, and interfacial attributes were associated with greater foliar Fe accumulation, chlorophyll index, biomass production, and root-system remodeling in Fe-deficient rice. In a single-site, single-season proof-of-concept field trial, no statistically significant differences were detected between NFCT and commercial EDTA-Fe for the measured agronomic traits under the tested application program. The results define a carbon-dot-centered structure-property-function framework in which internal Fe2+ protection, external coordination-gated transport, and rainfast foliar residence provide complementary delivery functions.

1202農芸化学
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