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Chemical and Biological Technologies in Agriculture· 2026Q1

N-enriched biochar with an optimized C:N ratio enhances crop growth by regulating enzymatic activities, soil properties, and photosynthetic efficiency under varying N fertilization

Muhammad Tauseef Jaffar, Muhammad Ahmed, Fangfang Zhang, Jiaqi Guo et al.

Short summary

Nitrogen-enriched biochar (NB1) with an optimized C:N ratio significantly boosted maize and wheat growth, increasing soil organic matter by up to 20.5% and enhancing N uptake efficiency, even at 70% of recommended N fertilizer.

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Key points

  • Nitrogen-enriched biochar (NB1) significantly increased soil NO3⁻-N, available N, N uptake efficiency, and N partial factor productivity across all N levels.
  • NB1 at 70% recommended N fertilizer boosted soil organic matter by 20.5% in maize and 18.5% in wheat.
  • NB1 markedly increased soil enzyme activities (NAG, LAP) by up to 114.9% in maize and 70.1% in wheat.
  • The greatest increase in grain yield and harvest index was achieved with NB1 at the N70 level.
  • NB1 enhanced photosynthetic efficiency and chlorophyll content, even under reduced N fertilization.

AI-generated from the title and abstract; the full text is not read.

Abstract

Biochar is widely used to enhance soil fertility and productivity, but the role of its C:N ratio and its interaction with varying nitrogen (N) application rates remains poorly understood. This study evaluated the effects of N-enriched biochar (NB) with different carbon-to-nitrogen (C:N) ratios at various N levels on the N fractions, growth, and yield of maize and wheat. Three kinds of biochar [pristine biochar (PB) and two NB types (NB1 and NB2)], along with a control (without biochar; CK), were applied at 100% (N100), 70% (N70), and 40% (N40) of recommended N fertilizer. NB1 and NB2 significantly increased NO 3 ⁻-N, available N (AN), N uptake efficiency (NUPE), and N partial factor productivity (NPFP), irrespective of N level. At N70 level, NB1 significantly improved soil organic matter (SOM) by 20.5% in maize and 18.5% in wheat at maturity, compared to CK-N70. Under N70, NB1 increased N-acetyl-glucosaminidase (NAG) and leucine aminopeptidase (LAP) activities by 114.9% and 98.5% at tasseling, and 68.0% and 64.3% at maturity in maize, respectively, as compared to CK-N70. In wheat, NAG and LAP activities rose by 70.1% and 47.1% at heading, and 30.1% and 42.0% at maturity under NB1-N70. The greatest increase in grain yield and harvest index (HI) was observed with NB1 at N70. NB also enhanced photosynthetic efficiency and chlorophyll content even at N70. NB1 at 70% of the recommended N rate improved soil N dynamics, enzymatic activities, and photosynthetic efficiency, ultimately enhancing crop growth and yield. These findings highlight the potential of NB to reduce dependence on chemical N fertilizers while maintaining crop productivity. Long-term and multi-site studies are required to confirm its effectiveness under diverse environmental conditions.

The authors' abstract, as published at the source. Chemical and Biological Technologies in Agriculture, 2026 · DOI ↗

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Field: Soil Science

Soil ScienceAgricultural and Biological Sciences