Urea-loaded nanoclay biopolymer composites integrated with beneficial microbes enhance nutrient uptake and mitigate greenhouse gas emissions

Low nitrogen use efficiency of prilled urea contributes to substantial economic loss and environmental pollution through leaching, denitrification, and ammonia volatilization. This study evaluated urea-loaded nanoclay biopolymer composites (NCBPCs), synthesized from clay-acrylic acid + aczrylamide-based polymer composite grafted with maize flour (NCBPC-M) and mango kernel flour (NCBPC-MK), integrated with phosphorus- and zinc-solubilizing bacteria ( Lactococcus lactis and Pseudomonas aeruginosa ), as a sustainable alternative nitrogen source in a maize–wheat cropping system. FTIR, XRD, and SEM analyses confirmed successful polymerization and clay exfoliation. Both the composites showed high water absorption capacity (NCBPC-M: ~68 g/g; NCBPC-MK: ~62 g/g after 24 h). A field experiment (randomized complete block design) compared ten treatments, including 75% recommended nitrogen delivered via NCBPCs with or without microbial inoculants, against 100% recommended dose through conventional urea. Treatments combining NCBPCs with both phosphorus- and zinc-solubilizing cultures (T9, T10) sustained higher and more synchronized soil ammoniacal and nitrate nitrogen levels, and significantly increased grain and stover phosphorus and zinc content in both crops compared with conventional urea. These treatments also reduced cumulative N 2 O emissions by 17–29% in wheat and 21–24% in maize relative to full-dose urea, with the maize flour-based composite showing the greatest mitigation potential. These findings demonstrate that microbe-integrated, urea-loaded nanoclay biopolymer composites can simultaneously improve nutrient synchronization, enhance micronutrient biofortification, and mitigate greenhouse gas emissions, offering a promising climate-smart strategy for sustainable nitrogen management in cereal cropping systems.

Authors

Institutions

Publication Details

Journal
Discover Soil.
Published
2026-10-05
DOI
https://doi.org/10.1007/s44378-026-00334-6
Primary Topic
Polymer-Based Agricultural Enhancements
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Urea-loaded nanoclay biopolymer composites integrated with beneficial microbes enhance nutrient uptake and mitigate greenhouse gas emissions

Kanchikeri Math Manjaiah, Dibakar Roy, Arti Bhatia, Abhishek Chauhan et al.
Discover Soil.
Polymer-Based Agricultural Enhancements
article

Urea-loaded nanoclay biopolymer composites integrated with beneficial microbes enhance nutrient uptake and mitigate greenhouse gas emissions

Kanchikeri Math Manjaiah, Dibakar Roy, Arti Bhatia, Abhishek Chauhan, Ravi Prakash Saini, Asheesh Kumar
article en

Abstract

Low nitrogen use efficiency of prilled urea contributes to substantial economic loss and environmental pollution through leaching, denitrification, and ammonia volatilization. This study evaluated urea-loaded nanoclay biopolymer composites (NCBPCs), synthesized from clay-acrylic acid + aczrylamide-based polymer composite grafted with maize flour (NCBPC-M) and mango kernel flour (NCBPC-MK), integrated with phosphorus- and zinc-solubilizing bacteria ( Lactococcus lactis and Pseudomonas aeruginosa ), as a sustainable alternative nitrogen source in a maize–wheat cropping system. FTIR, XRD, and SEM analyses confirmed successful polymerization and clay exfoliation. Both the composites showed high water absorption capacity (NCBPC-M: ~68 g/g; NCBPC-MK: ~62 g/g after 24 h). A field experiment (randomized complete block design) compared ten treatments, including 75% recommended nitrogen delivered via NCBPCs with or without microbial inoculants, against 100% recommended dose through conventional urea. Treatments combining NCBPCs with both phosphorus- and zinc-solubilizing cultures (T9, T10) sustained higher and more synchronized soil ammoniacal and nitrate nitrogen levels, and significantly increased grain and stover phosphorus and zinc content in both crops compared with conventional urea. These treatments also reduced cumulative N 2 O emissions by 17–29% in wheat and 21–24% in maize relative to full-dose urea, with the maize flour-based composite showing the greatest mitigation potential. These findings demonstrate that microbe-integrated, urea-loaded nanoclay biopolymer composites can simultaneously improve nutrient synchronization, enhance micronutrient biofortification, and mitigate greenhouse gas emissions, offering a promising climate-smart strategy for sustainable nitrogen management in cereal cropping systems.

Discover Soil.Vol. 3(1)
Indian Space Research Organisation (IN), National Remote Sensing Centre (IN), Indian Agricultural Research Institute (IN)
Indian Council of Agricultural Research, Indian Agricultural Research Institute
Climate action, Responsible consumption and production
Openalex Percentile: Top 23%
Polymer-Based Agricultural Enhancements
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.