Integrated Application of Biochar and Polyacrylamide with Conservation Tillage Promotes Fertilizer-N Recovery in the Short Term
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Field Experiment Design and Setup
2.3. 15N-Microplot Setup
2.4. Plant and Soil Sampling and Analysis
2.5. Calculations
2.6. Statistical Analysis
3. Results
3.1. Soil Organic Carbon Contents in the Soil Profile
3.2. Aggregate Composition and Its Associated Soil Organic Carbon
3.3. Total Fertilizer-N Recovery
3.4. Fertilizer-N Recovered in Soil Profile
3.5. Crop-Recovered N and Crop Yield
3.6. Relationships Between Fertilizer-N Recoveries, Soil Physical and Chemical Properties, and Crop Yield
4. Discussion
4.1. Effects of Soil Management Practices on SOC and Aggregates
4.2. Patterns of N Recovery Under Soil Amendment Practices
4.3. Roles of SOC and Soil Aggregation in Regulating Fertilizer-N Recovery
4.4. Limitations and Implications
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| NLOC | Nonlabile soil organic carbon |
| SOC | Soil organic carbon |
| LOC | Labile soil organic carbon |
| MWD | Mean weight diameter of soil aggregates |
| PAM | Application of polyacrylamide |
| PMC | Combined application of polyacrylamide and biochar |
| NUE | Nitrogen use efficiency |
| SEM | Structural equation modeling |
| BC | Application of biochar |
| RT | Rotary tillage |
| CT | Conservation tillage |
| TN | Soil total nitrogen |
| C | Carbon |
| N | Nitrogen |
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| Parameter 1 | Cropping Season | ANOVA F-Value 2 | ||
|---|---|---|---|---|
| Tillage | Amendment | Tillage × Amendment | ||
| SOC stock | Wheat | 1.316 | 21.71 *** | 0.898 |
| Maize | 0.06 | 23.2 *** | 0.144 | |
| LOC stock | Wheat | 10.307 | 4.301 * | 3.76 * |
| Maize | 5.851 | 9.763 ** | 14.849 *** | |
| NLOC stock | Wheat | 0.14 | 14.272 *** | 0.843 |
| Maize | 1.54 | 21.884 *** | 1.694 | |
| SOC lability | Wheat | 1.749 | 5.499 * | 2.491 |
| Maize | 3.789 | 14.977 *** | 5.781 * | |
| MWD of aggregate | Wheat | 0.004 | 2.346 | 1.624 |
| Maize | 0.428 | 10.6 ** | 0.718 | |
| Total fertilizer-N recovery | Wheat | 0 | 26.728 *** | 7.182 ** |
| Maize | 1.397 | 4.482 * | 4.009 * | |
| Crop-recovered fertilizer-N | Wheat | 74.837 * | 11.134 *** | 1.586 |
| Maize | 54.906 * | 16.338 *** | 2.168 | |
| Soil-recovered fertilizer-N | Wheat | 15.826 | 2.191 | 1.156 |
| Maize | 19.146 * | 1.042 | 6.063 ** | |
| Native soil-N uptake in crop | Wheat | 5.529 | 4.323 * | 0.388 |
| Maize | 77.19 * | 20.793 *** | 0.184 | |
| Crop yield | Wheat | 1.249 | 7.983 ** | 4.132 * |
| Maize | 19.056 * | 1.148 | 0.371 | |
| Tillage | Amendment 1 | Wheat Season | Maize Season | ||||||
|---|---|---|---|---|---|---|---|---|---|
| >2 mm | 0.25–2 mm | 0.053–0.25 mm | <0.053 mm | >2 mm | 0.25–2 mm | 0.053–0.25 mm | <0.053 mm | ||
| RT_ | CK | 13.01 ± 0.14 b 2 | 11.63 ± 0.31 b | 9.54 ± 0.21 ab | 8.34 ± 0.14 a | 14.18 ± 0.23 b | 12.64 ± 0.24 a | 9.31 ± 0.24 a | 8.42 ± 0.23 ab |
| PAM | 12.28 ± 0.44 b | 13.67 ± 0.90 ab | 8.99 ± 0.10 b | 7.50 ± 0.44 a | 12.67 ± 0.51 c | 13.17 ± 1.08 a | 9.24 ± 0.25 b | 7.51 ± 0.51 b | |
| BC | 20.16 ± 3.93 a | 15.66 ± 1.73 a | 10.63 ± 0.52 a | 8.32 ± 3.93 a | 16.59 ± 0.41 a | 14.18 ± 0.64 a | 11.06 ± 0.42 a | 9.24 ± 0.41 ab | |
| PMC | 19.66 ± 0.70 a | 16.27 ± 0.49 a | 10.68 ± 0.17 a | 8.87 ± 0.70 a | 16.39 ± 0.12 a | 12.81 ± 0.71 a | 9.32 ± 0.28 b | 9.99 ± 0.12 a | |
| CT_ | CK | 15.54 ± 2.75 a | 13.28 ± 1.19 a | 11.15 ± 0.25 ab | 8.19 ± 2.75 b | 13.07 ± 0.63 c | 13.96 ± 0.62 ab | 9.64 ± 0.29 b | 9.20 ± 0.63 ab |
| PAM | 14.53 ± 1.19 a | 15.26 ± 0.43 a | 9.95 ± 0.38 b | 8.45 ± 1.19 b | 13.30 ± 0.42 c | 12.29 ± 0.62 b | 10.10 ± 0.18 b | 7.84 ± 0.42 b | |
| BC | 19.96 ± 0.46 a | 15.67 ± 0.60 a | 10.05 ± 0.42 b | 7.28 ± 0.46 b | 15.45 ± 0.27 b | 13.85 ± 0.44 b | 11.80 ± 0.33 a | 9.69 ± 0.27 a | |
| PMC | 19.45 ± 0.67 a | 15.87 ± 0.72 a | 11.79 ± 0.89 a | 10.52 ± 0.67 a | 17.63 ± 0.33 a | 15.95 ± 0.25 a | 10.22 ± 0.24 b | 10.69 ± 0.33 a | |
| ANOVA 3 | |||||||||
| Tillage | ns | ns | ** | ns | ns | ns | ns | ns | |
| Amendment | ** | * | * | * | *** | ns | *** | * | |
| Tillage × amendment | ns | ns | ns | ns | * | * | ns | ns | |
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Xu, C.; Li, W.; Wang, J.; Wang, J.; Qiu, X.; Ji, C.; Yuan, J.; Liu, H.; Zhang, Y.; Ai, Y.; et al. Integrated Application of Biochar and Polyacrylamide with Conservation Tillage Promotes Fertilizer-N Recovery in the Short Term. Agriculture 2026, 16, 1171. https://doi.org/10.3390/agriculture16111171
Xu C, Li W, Wang J, Wang J, Qiu X, Ji C, Yuan J, Liu H, Zhang Y, Ai Y, et al. Integrated Application of Biochar and Polyacrylamide with Conservation Tillage Promotes Fertilizer-N Recovery in the Short Term. Agriculture. 2026; 16(11):1171. https://doi.org/10.3390/agriculture16111171
Chicago/Turabian StyleXu, Cong, Weijie Li, Jidong Wang, Junzhe Wang, Xinqi Qiu, Cheng Ji, Jie Yuan, Haokuang Liu, Yongchun Zhang, Yuchun Ai, and et al. 2026. "Integrated Application of Biochar and Polyacrylamide with Conservation Tillage Promotes Fertilizer-N Recovery in the Short Term" Agriculture 16, no. 11: 1171. https://doi.org/10.3390/agriculture16111171
APA StyleXu, C., Li, W., Wang, J., Wang, J., Qiu, X., Ji, C., Yuan, J., Liu, H., Zhang, Y., Ai, Y., & Zhang, Z. (2026). Integrated Application of Biochar and Polyacrylamide with Conservation Tillage Promotes Fertilizer-N Recovery in the Short Term. Agriculture, 16(11), 1171. https://doi.org/10.3390/agriculture16111171

