Interplay Between Nanomaterials and Plants: 2nd Edition

A special issue of Nanomaterials (ISSN 2079-4991). This special issue belongs to the section "Biology and Medicines".

Deadline for manuscript submissions: 15 November 2026 | Viewed by 605

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Guest Editor
Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences, Beijing 100081, China
Interests: nanobiotechnology; nanomaterials; agricultural biotechnology; nanodelivery systems
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Special Issue Information

Dear Colleagues,

The development of nanobiotechnology provides new ideas for plant science, including growth improvement, plant protection, and gene modification. Nanomaterials and nanoparticles exhibit great potential as targeted delivery systems for agricultural chemicals, bioactive compounds, and vital genes, as well as functioning as nutritional supplements or growth regulators for plants. However, a complete understanding of the interplay between nanomaterials and plants remains unclear. The complex mechanisms of plant–nanomaterial interactions depend on several parameters, such as the properties of nanoparticles, host plants, uptake route, and exposure time and dosage. Moreover, the positive and negative effects of nanomaterials on plants still require deeper study.

This Special Issue aims to summarize recent topical results in plant–nanomaterial interactions, with a particular focus on the dynamics and mechanism of nanoparticles in plants, the application of nanomaterials in plants for benefits, the biological effect and impact on plants, and innovative approaches and tools for plant detection.

In this Special Issue, original research articles, communications, and reviews are welcome. We are pleased to invite you to contribute your findings and insights regarding advancements, challenges, and potential solutions related to the interplay between nanomaterials and plants. We encourage authors to submit papers on fundamental aspects, experimental investigations, and theoretical analyses. Research areas may include (but are not limited to) the following:

  • Nano-delivery of pesticides, fertilizers, nuclear acids, and biomolecules in plants.
  • Applications of nanomaterials for plant stress tolerance, yield elevation, growth regulation, insect resistance, etc.
  • Mechanisms of uptake, transport, fate, and transformation of nanoparticles in plants.
  • Implications of nanomaterials taken up by plants.
  • Bioaccumulation, biomagnification, biotransformation behavior, and toxicity of nanomaterials in plants and the environment.
  • Innovative approaches and tools for plant–nanomaterial interaction detection.

We look forward to receiving your contributions.

Dr. Xiang Zhao
Guest Editor

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Keywords

  • nano agrochemicals
  • nanopesticides
  • nanofertilizers
  • gene modification
  • nanodelivery
  • plant growth
  • plant absorption
  • uptake and transfer
  • conduction behavior
  • plant–nanomaterial interaction

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Published Papers (1 paper)

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16 pages, 986 KB  
Systematic Review
Nanobubble-Saturated Water in Soil–Plant Systems: Root-Zone Oxygenation, Chemical Responses, and Structural Stability
by Yeganeh Arablousabet and Arvydas Povilaitis
Nanomaterials 2026, 16(15), 906; https://doi.org/10.3390/nano16150906 - 24 Jul 2026
Viewed by 412
Abstract
Nanobubble-saturated water (NBSW) has gained prominence in agricultural research due to its ability to affect root-zone oxygenation and soil–plant interactions. This review aimed to analyze the available research on the impacts of NBSW on soil moisture storage, percolation, electrical conductivity (EC), microbial activity, [...] Read more.
Nanobubble-saturated water (NBSW) has gained prominence in agricultural research due to its ability to affect root-zone oxygenation and soil–plant interactions. This review aimed to analyze the available research on the impacts of NBSW on soil moisture storage, percolation, electrical conductivity (EC), microbial activity, and soil structural dynamics across different gas types and soil textures. Therefore, a systematic literature search was carried out, and the retrieved publications were synthesized with keyword co-occurrence and bibliometric analysis. This review fills the gap in the literature by integrating findings on root-zone oxygenation, nutrient dynamics, and soil structural responses into a single framework. Research showed that NBSW may influence water partitioning by increasing evaporation and lowering percolation, leading to different vertical moisture gradients. However, the effects could be impacted by the soil texture, as finer textures retained more moisture, while coarser soils increased oxygen penetration and microbial stimulation. Furthermore, increased oxygen availability under NBSW further changed microbial community activity, which could impact soil CO2 emissions and nitrogen and phosphorus cycling. While repeated NBSW application may gradually increase soil compaction, particularly in finer-textured soils, overall, NBSW demonstrated versatile watering modifications that might influence soil physical, chemical, and biological processes. However, further research is needed to determine the appropriate gas types and application strategies for different soils under real field-scale agricultural conditions. Full article
(This article belongs to the Special Issue Interplay Between Nanomaterials and Plants: 2nd Edition)
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