| Literature DB >> 28481923 |
Tao Liu1, Yongchao Liang2, Guixin Chu1.
Abstract
Nitrification inhibitors (NIs) have been used extensively to reduce nitrogen losses and increase crop nitrogen nutrition. However, information is still scant regarding the influence of NIs on nitrogen transformation, nitrous oxide (N2O) emission and nitrogen utilization in plastic-film-mulched calcareous soil under high frequency drip-fertigated condition. Therefore, a field trial was conducted to evaluate the effect of nitrapyrin (2-chloro-6-(trichloromethyl)-pyridine) on soil mineral nitrogen (N) transformation, N2O emission and nitrogen use efficiency (NUE) in a drip-fertigated cotton-growing calcareous field. Three treatments were established: control (no N fertilizer), urea (225 kg N ha-1) and urea+nitrapyrin (225 kg N ha-1+2.25 kg nitrapyrin ha-1). Compared with urea alone, urea plus nitrapyrin decreased the average N2O emission fluxes by 6.6-21.8% in June, July and August significantly in a drip-fertigation cycle. Urea application increased the seasonal cumulative N2O emission by 2.4 kg N ha-1 compared with control, and nitrapyrin addition significantly mitigated the seasonal N2O emission by 14.3% compared with urea only. During the main growing season, the average soil ammonium nitrogen (NH4+-N) concentration was 28.0% greater and soil nitrate nitrogen (NO3--N) concentration was 13.8% less in the urea+nitrapyrin treatment than in the urea treatment. Soil NO3--N and water-filled pore space (WFPS) were more closely correlated than soil NH4+-N with soil N2O fluxes under drip-fertigated condition (P<0.001). Compared with urea alone, urea plus nitrapyrin reduced the seasonal N2O emission factor (EF) by 32.4% while increasing nitrogen use efficiency by 10.7%. The results demonstrated that nitrapyrin addition significantly inhibited soil nitrification and maintained more NH4+-N in soil, mitigated N2O losses and improved nitrogen use efficiency in plastic-film-mulched calcareous soil under high frequency drip-fertigated condition.Entities:
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Year: 2017 PMID: 28481923 PMCID: PMC5421752 DOI: 10.1371/journal.pone.0176305
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Schematic diagram of the experimental plot layout with plastic-film-mulched and drip fertigation system.
Drip fertigation schedule and the amounts of water and fertilizers.
| Fertigation time | 13–06 | 23–06 | 04–07 | 12–07 | 23–07 | 04–08 | 12–08 | 22–08 | 30–08 | 04–09 |
|---|---|---|---|---|---|---|---|---|---|---|
| Water (mm ha-1) | 45 | 52.5 | 52.5 | 60 | 60 | 52.5 | 45 | 45 | 30 | 22.5 |
| N (kg ha-1) | 7.5 | 22.5 | 37.5 | 45 | 45 | 37.5 | 22.5 | 7.5 | 0 | 0 |
| P2O5 (kg ha-1) | 7.5 | 10.5 | 12 | 15 | 15 | 15 | 9 | 6 | 0 | 0 |
| K2O (kg ha-1) | 5 | 7 | 8 | 10 | 10 | 10 | 6 | 4 | 0 | 0 |
| Nitrapyrin (kg ha-1) | 0.075 | 0.225 | 0.375 | 0.45 | 0.45 | 0.375 | 0.225 | 0.075 | 0 | 0 |
The N rates are only for the urea and the urea+nitrapyrin treatments, nitrapyrin rates are only for the urea+nitrapyrin treatment, the rates of water, P2O5 and K2O are for all the treatments.
Fig 2Dynamics of soil N2O emissions, water-filled pore space (WFPS) and soil temperature at the 5 cm depth.
Error bars represent standard deviation.
Cumulative soil N2O emission during the main growing season of cotton plants.
| Treatments | N2O emissions rates (kg N ha-1) | Total | ||
|---|---|---|---|---|
| June | July | August | ||
| Control | 1.13 ± 0.05 c | 1.06 ± 0.07 C | 0.86 ± 0.07 C | 3.05 ± 0.05 C |
| Urea | 1.76 ± 0.05 a | 2.18 ± 0.14 A | 1.48 ± 0.03 A | 5.42 ± 0.11 A |
| Urea+nitrapyrin | 1.64 ± 0.04 b | 1.70 ± 0.07 B | 1.31 ± 0.06 B | 4.65 ± 0.06 B |
Data were means ± SD (n = 3); Different lowercase and uppercase letters in same column mean significant differences at the level of 0.05 and 0.01, respectively according to LSD test.
Fig 3Dynamics of soil NH4+-N and NO3--N concentrations in the 0–15 cm depth soil layer.
Error bars represent standard deviation.
Pearson correlation and path analysis between N2O fluxes and soil NH4+-N concentrations, NO3--N concentrations, water-filled pore space (WFPS), and soil temperature at the 5 cm depth (T5cm).
| Independent variables | Pearson correlation coefficients | Direct path coefficients | Indirect path coefficients | ||||
|---|---|---|---|---|---|---|---|
| NH4+-N | NO3--N | WFPS | T5cm | SUM | |||
| NH4+-N | 0.196 | 0.139 | – | 0.081 | 0.013 | -0.036 | 0.057 |
| NO3--N | 0.628 | 0.563 | 0.020 | – | 0.040 | 0.006 | 0.066 |
| WFPS | 0.288 | 0.162 | 0.011 | 0.139 | – | -0.023 | 0.126 |
| Soil temperature | 0.108 | 0.144 | -0.035 | 0.024 | -0.026 | – | 0.037 |
* and ***denote significance at the 0.05 and 0.001 probability levels-2-tailed, respectively (n = 162).
Yield, N uptake, emission factor (EF) of N2O and nitrogen use efficiency (NUE).
| Treatments | Lint yield | Aboveground N uptake | EF of N2O | NUE |
|---|---|---|---|---|
| Control | 1.91 ± 0.10 b | 236.92 ± 5.02 b | - | - |
| Urea | 2.48 ± 0.19 a | 356.95 ± 12.39 a | 1.05 ± 0.04 B | 53.35 ± 3.28 b |
| Urea+nitrapyrin | 2.58 ± 0.18 a | 369.79 ± 8.68 a | 0.71 ± 0.03 A | 59.05 ± 1.63 a |
Data were means ± SD (n = 3); Different lowercase and uppercase letters in same column mean significant differences at the level of 0.05 and 0.01, respectively according to LSD test.