| Literature DB >> 29468334 |
Barbara J Cade-Menun1, Kyle R Elkin2, Corey W Liu3, Ray B Bryant2, Peter J A Kleinman2, Philip A Moore4.
Abstract
Phosphorus (P) can limit crop production in many soils, and soil testing is used to guide fertilizer recommendations. The Mehlich III (M3) soil test is widely used in North America, followed by colorimetric analysis for P, or by inductively coupled plasma-based spectrometry (ICP) for P and cations. However, differences have been observed in M3 P concentrations measured by these methods. Using 31P nuclear magnetic resonance (P-NMR) and mass spectrometry (MS), we characterized P forms in M3 extracts. In addition to the orthophosphate that would be detected during colorimetric analysis, several organic P forms were present in M3 extracts that would be unreactive colorimetrically but measured by ICP (molybdate unreactive P, MUP). Extraction of these P forms by M3 was confirmed by P-NMR and MS in NaOH-ethylenediaminetetraacetic acid extracts of whole soils and residues after M3 extraction. The most abundant P form in M3 extracts was myo-inositol hexaphosphate (myo-IHP, phytate), a compound that may not contribute to plant-available P if tightly sorbed in soil. Concentrations of myo-IHP and other organic P forms varied among soils, and even among treatment plots on the same soil. Extraction of myo-IHP in M3 appeared to be linked to cations, with substantially more myo-IHP extracted from soils fertilized with alum-treated poultry litter than untreated litter. These results suggest that ICP analysis may substantially over-estimate plant-available P in samples with high MUP concentrations, but there is no way at present to determine MUP concentrations without analysis by both colorimetry and ICP. This study also tested procedures that will improve future soil P-NMR studies, such as treatment of acid extracts, and demonstrated that techniques such as P-NMR and MS are complimentary, each yielding additional information that analysis by a single technique may not provide.Entities:
Keywords: Alum; Mass spectrometry; P-NMR; Phosphorus; Phytate; Poultry litter
Year: 2018 PMID: 29468334 PMCID: PMC5821619 DOI: 10.1186/s12932-018-0052-9
Source DB: PubMed Journal: Geochem Trans ISSN: 1467-4866 Impact factor: 4.737
General information about the soils used in this study
| AR-control | AR-N | AR-PL | AR-PL-Alum | SK | PEI | Till Ref | |
|---|---|---|---|---|---|---|---|
| Source | USDA-ARS plots, Fayetteville, AR USA | AAFC, SK Canada | AAFC, PEI, Canada | CCRMP, NRC, Canada | |||
| Treatment | Control soil | Commercial N treatment | Untreated poultry litter | Alum-treated poultry litter | Continuous wheat | No till | Commercial Reference Material |
| Depth, cm | 0–5 | 0–5 | 0–5 | 0–5 | 0–7.5 | 0–5 | B, C horizons |
| pH (H20) | 5.7 | 4.8 | 6.3 | 5.4 | 5.9 | 4.7 | 5.9 |
| Total N, % | 0.17 | 0.21 | 0.25 | 0.24 | 0.20 | 0.17 | 0.20 |
| Total C, % | 1.68 | 2.03 | 2.39 | 2.06 | 2.09 | 2.29 | 2.03 |
| Total P, mg kg−1 | 473 | 470 | 1345 | 1733 | 548 | 1097 | 930 |
| Organic P, mg kg−1 (%)a | 241 (51) | 211 (45) | 216 (16) | 730 (42) | 278 (51) | 407 (36) | 374 (40) |
| Organic P, mg kg−1 (%)b | 144 (51) | 177 (54) | 165 (22) | 483 (41) | 177 (52) | 175 (23) | 139 (39) |
| References | [ | [ | [ | ||||
aDetermined by the ignition method
bDetermined by P-NMR spectroscopy
Fig. 1A flow chart of the extraction and analysis procedures used in this study. Please see the text for a full description of the “Methods”
Fig. 2P-NMR spectra of whole soil samples extracted with NaOH-EDTA. Spectra are plotted with 7 Hz line-broadening and scaled to the height of the orthophosphate peak
Fig. 3P-NMR spectra of whole soil samples extracted with Mehlich III solution. Spectra are plotted with 7 Hz line-broadening and scaled to the height of the orthophosphate peak
Fig. 4P-NMR spectra of Mehlich III residue soils extracted with NaOH-EDTA. Spectra are plotted with 7 Hz line-broadening and scaled to the height of the orthophosphate peak
Fig. 5Enhanced orthophosphate monoester region of P-NMR spectra of whole soil samples extracted with NaOH-EDTA. Spectra are processed with 2 Hz line-broadening, and are scaled to the tallest peak in the M2 region. A1 and A2, chiro-inositol hexaphosphate (IHP) in the 4-equatorial, 2-axial 4-axial, 2-equatorial conformations, respectively; B, neo-IHP; C, myo-IHP; D, scyllo-IHP; E, α-glycerophosphate; F, β-glycerophosphate; G, choline phosphate; H, unidentified peak at 5 ppm. Note that not all peaks are labelled in all spectra in the figure
Chemical shifts of peaks detected in P-NMR spectra
| Category | P form or compound class | Chemical shift (ppm) |
|---|---|---|
| Inorganic P | ||
| Orthophosphate | 6.00 ± 0.00 | |
| Pyrophosphate | − 4.06 ± 0.37 | |
| Polyphosphates | − 4.02 ± 0.32, − 4.89 ± 0.55, − 6.80 ± 0.79, − 8.95 ± 0.86, − 11.98 ± 0.83, − 16.68 ± 0.82, − 19.01 ± 0.89, − 20.99 ± 0.66, − 24.97 ± 0.74 | |
| Organic P | ||
| Phosphonates | 29.89 ± 0.75, 27.32 ± 0.67, 20.40 ± 0.10, 18.81 ± 0.19, 14.97 ± 0.48, 12.75 ± 0.70, 10.00 ± 0.95, 8.10 ± 0.23, 7.35 ± 0.17 | |
| Orthophosphate monoesters | ||
| 5.49 ± 0.21, 4.56 ± 0.18, 4.16 ± 0.19, 4.06 ± 0.22 | ||
| 3.71 ± 0.17 | ||
| 6.43 ± 0.15, 4.26 ± 0.19 | ||
| 6.59 ± 0.17, 5.29 ± 0.18, 3.96 ± 0.20 | ||
| 6.21 ± 0.19, 4.84 ± 0.20, 4.31 ± 0.17 | ||
| Choline phosphate | 3.85 ± 0.18 | |
| Unknown | 5.01 ± 0.15 | |
| Monoester 1 | 6.86 ± 0.06, 6.69 ± 0.06, 6.37 ± 0.14, 6.24 ± 0.20 | |
| Monoester 2 | 5.82 ± 0.07, 5.69 ± 0.08, 5.50 ± 0.17, 5.29 ± 0.12, 4.83 ± 0.14, 4.67 ± 0.15 | |
| Monoester 3 | 3.71 ± 0.06, 3.53 ± 0.07, 3.32 ± 0.10, 3.12 ± 0.10, 2.96 ± 0.10, 2.72 ± 0.11 | |
| Degradation compounds | ||
| α-Glycerophosphate | 4.85 ± 0.02 | |
| ß-Glycerophosphate | 4.67 ± 0.02 | |
| Mononucleotides | 4.53 ± 0.06, 4.46 ± 0.11, 4.37 ± 0.14, 4.267 ± 0.14, 4.10 ± 0.12 | |
| Orthophosphate diesters | ||
| DNA | − 0.78 ± 0.26, − 0.91 ± 0.32 | |
| Other diesters | 2.35 ± 0.11, 1.96 ± 0.10, 1.55 ± 0.17, 1.15 ± 0.22, 0.65 ± 0.19, 0.33 ± 0.27, 0.07 ± 0.19, − 0.27 ± 0.20, − 0.57 ± 0.23, − 1.14 ± 0.21, − 1.52 ± 0.09, − 1.79 ± 0.13, − 2.15 ± 0.22, − 2.55 ± 0.23, − 3.01 ± 0.18, − 3.63 ± 0.21 | |
Peaks present in at least 10 of the 21 samples analyzed for the project, with all extractions grouped together
IHP inositol hexakisphosphate, 4e/2a phosphates arranged in the 4-equatorial, 2-axial conformation, 4a/2e phosphates arranged in the 4-axial, 2-equatorial conformation
Concentrations of P and cations in each extract for each soil
| Extractant | AR-control | AR-N | AR-PL | AR-PL-alum | SK | PEI | Till Ref | ||
|---|---|---|---|---|---|---|---|---|---|
| TP | Mehlich III | Soil | 64 (13) | 84 (16) | 382 (32) | 675 (55) | 99 (18) | 244 (22) | 30 (3) |
| NaOH-EDTA | Residue | 255 (53) | 306 (58) | 601 (50) | 1101 (90) | 204 (36) | 396 (36) | 328 (35) | |
| NaOH-EDTA | Soil | 282 (59) | 327 (62) | 753 (63) | 1178 (97) | 340 (60) | 759 (69) | 360 (39) | |
| NaOH-EDTA | Difference | 27 (6) | 21 (4) | 152 (13) | 77 (7) | 136 (24) | 363 (33) | 32 (4) | |
| MUP | Mehlich III | Soil | 33 (53) | 25 (33) | 4 (< 1) | 306 (41) | 33 (39) | 33 (14) | 1 (3) |
| Al | Mehlich III | Soil | 421 | 695 | 506 | 1205 | 671 | 1256 | 1683 |
| Fe | Mehlich III | Soil | 106 | 220 | 160 | 161 | 146 | 216 | 335 |
| Mn | Mehlich III | Soil | 112 | 54 | 113 | 32 | 174 | 29 | 179 |
| Ca | Mehlich III | Soil | 1152 | 376 | 1547 | 853 | 1548 | 441 | 972 |
| Mg | Mehlich III | Soil | 148 | 49 | 266 | 112 | 347 | 53 | 161 |
Concentrations are given in mg kg−1 soil. MUP, concentration of molybdate-unreactive P, determined as the difference in P measured by ICP and colorimetrically (percent of total soil P recovered in M3 extract). All other concentrations determined by ICP-OES. Residue, residual soil after Mehlich III extraction; TP, total P in each extract (percent of total soil P recovered in each extract). Difference is the difference in between the NaOH-EDTA extracts of whole soils and the NaOH-EDTA extracts of the residue after Mehlich III extraction
Fig. 6Mass spectrometry spectrum of typical sample extracted with NaOH-EDTA followed by Chelex cation removal. Most of the peaks listed in Table 7 are evident here. The 328.92 peak is the most abundant (100%), followed by 578.89 and 658.85 all of which are inositol hexaphosphates. The peaks at 96.96 and 78.85 are phosphates, which have been liberated under the 15 eV CID added in the electrospray chamber
Mass spectrometry fragmentation ions
| Ion | Loss | m/z |
|---|---|---|
| C6H17O24P61− | Parent ion (H−) | 658.8536 |
| C6H16O24P62− | Parent ion (H−) | 328.9234 |
| C6H16O21P51− | –HPO3− | 578.8874 |
| C6H15O18P41− | (2) PO3− | 498.9214 |
| C6H16O21P52− | HPO3− | 288.9402 |
| H2PO4− | Ejected ion | 96.9585 |
| PO3− | Ejected ion | 78.9585 |
| C6H15MgO24P61− | –2H− | 680.8356 |
| C6H14MgO21P51− | –2H− + HPO3− | 600.8698 |
| C6H16NaO24P62− | –2H− | 339.9142 |
| C6H14NaKO18P42− | –2HPO3− | 279.9337 |
Inositol hexaphosphate (IHP) stereoisomer concentrations, determined by solution P-NMR or mass spectrometry
| Extractant | AR-control | AR-N | AR-PL | AR-PL-alum | SK | PEI | Till Ref | ||
|---|---|---|---|---|---|---|---|---|---|
| Mehlich III | Soil | 14 (22) | 12 (15) | 11 (3) | 219 (33) | 5 (5) | 7 (3) | 2 (5) | |
| NMR | NaOH-EDTA | Residue | 32 (13) | 40 (13) | 48 (8) | 336 (31) | 17 (8) | 32 (8) | 26 (8) |
| NaOH-EDTA | Soil | 39 (14) | 62 (19) | 29 (4) | 229 (19) | 34 (10) | 43 (6) | 30 (8) | |
| NaOH-EDTA | Difference | 7 (1) | 21 (6) | − 19 (− 4) | − 107 (− 11) | 18 (2) | 10 (3) | 3 (0) | |
| Mehlich III | Soil | 4 (6) | 3 (4) | 3 (1) | 10 (2) | 1 (1) | 2 (1) | 1 (2) | |
| NMR | NaOH-EDTA | Residue | 4 (1) | 7 (2) | 4 (1) | 15 (1) | 7 (3) | 11 (3) | 9 (3) |
| NaOH-EDTA | Soil | 7 (3) | 11 (3) | 10 (3) | 16 (1) | 7 (2) | 16 (2) | 10 (3) | |
| Mehlich III | Soil | 0 (1) | 1 (1) | 3 (1) | 5 (1) | 1 (1) | 2 (1) | 0 (1) | |
| NMR | NaOH-EDTA | Residue | 2 (1) | 2 (1) | 4 (1) | 0 (0) | 1 (1) | 3 (1) | 2 (1) |
| NaOH-EDTA | Soil | 2 (1) | 2 (1) | 5 (1) | 8 (1) | 2 (1) | 5 (1) | 3 (1) | |
| Mehlich III | Soil | 2 (3) | 3 (4) | 5 (1) | 20 (3) | 2 (2) | 3 (1) | 1 (3) | |
| NMR | NaOH-EDTA | Residue | 11 (4) | 13 (4) | 24 (4) | 39 (4) | 7 (4) | 8 (2) | 7 (2) |
| NaOH-EDTA | Soil | 9 (3) | 11 (3) | 20 (3) | 33 (3) | 15 (4) | 21 (3) | 13 (4) | |
| Total IHP | Mehlich III | Soil | 20 (31) | 20 (24) | 21 (6) | 254 (38) | 9 (9) | 14 (6) | 3 (10) |
| NMR | NaOH-EDTA | Residue | 48 (19) | 63 (21) | 81 (13) | 390 (35) | 32 (16) | 54 (14) | 44 (13) |
| NaOH-EDTA | Soil | 57 (20) | 86 (26) | 62 (8) | 286 (24) | 59 (17) | 85 (11) | 54 (15) | |
| NaOH-EDTA | Difference | 8 (1) | 23 (6) | − 18 (− 5) | − 104 (− 11) | 27 (2) | 31 (− 3) | 11 (2) | |
| Total IHP | Mehlich III | Soil | 11 (17) | 4 (5) | 9 (3) | 46 (7) | 1 (< 1) | 6 (3) | 1 (1) |
| Mass spec. | NaOH-EDTA | Residue | 47 (19) | 51 (15) | 52 (8) | 354 (32) | 29 (15) | 58 (15) | 37 (11) |
| NaOH-EDTA | Soil | 60 (20) | 66 (20) | 59 (9) | 329 (29) | 38 (20) | 68 (17) | 39 (11) |
Values are concentration in mg kg−1 (percentage of extract P). Residue is the residual soil after Mehlich III extraction. Total inorganic P is the sum of orthophosphate, pyrophosphate and polyphosphate. Difference is the difference in between the NaOH-EDTA extracts of whole soils and the NaOH-EDTA extracts of the residue after Mehlich III extraction
Concentrations and percentages of inorganic P compounds in extracts of whole soil or residues, determined by solution P-NMR spectroscopy
| Extractant | AR-control | AR-N | AR-PL | AR-PL-alum | SK | PEI | Till Ref | ||
|---|---|---|---|---|---|---|---|---|---|
| MRP | Mehlich III | Soil | 31 (47) | 59 (67) | 378 (100) | 369 (59) | 60 (61) | 211 (86) | 29 (97) |
| Orthophosphate | Mehlich III | Soil | 31 (49) | 50 (59) | 332 (87) | 338 (50) | 69 (70) | 213 (87) | 22 (72) |
| NaOH-EDTA | Residue | 149 (59) | 157 (51) | 426 (71) | 497 (45) | 102 (50) | 275 (69) | 102 (31) | |
| NaOH-EDTA | Soil | 118 (42) | 139 (43) | 562 (75) | 663 (56) | 155 (46) | 573 (76) | 207 (58) | |
| NaOH-EDTA | Difference | − 31 (− 17) | − 17 (− 9) | 136 (4) | 167 (11) | 54 (− 4) | 298 (6) | 105 (26) | |
| Pyrophosphate | Mehlich III | Soil | 0 (0) | 0 (0) | 1 (0) | 1 (0) | 0 (0) | 0 (0) | 0 (0) |
| NaOH-EDTA | Residue | 3 (1) | 10 (3) | 6 (1) | 8 (1) | 6 (3) | 6 (2) | 6 (2) | |
| NaOH-EDTA | Soil | 12 (4) | 7 (2) | 12 (2) | 20 (2) | 3 (1) | 5 (1) | 8 (2) | |
| Polyphosphate | Mehlich III | Soil | 1 (2) | 1 (1) | 2 (1) | 4 (1) | 2 (2) | 2 (1) | 1 (2) |
| NaOH-EDTA | Residue | 2 (1) | 5 (2) | 2 (0) | 8 (1) | 4 (2) | 2 (1) | 4 (1) | |
| NaOH-EDTA | Soil | 8 (3) | 5 (1) | 14 (2) | 12 (1) | 5 (1) | 6 (1) | 5 (1) | |
| Total inorganic P | Mehlich III | Soil | 32 (49) | 50 (60) | 334 (87) | 343 (51) | 71 (72) | 215 (88) | 22 (74) |
| NaOH-EDTA | Residue | 155 (61) | 172 (56) | 435 (72) | 512 (47) | 112 (55) | 284 (72) | 112 (34) | |
| NaOH-EDTA | Soil | 138 (49) | 150 (46) | 588 (78) | 695 (59) | 163 (48) | 584 (77) | 221 (61) | |
| NaOH-EDTA | Difference | − 16 (− 12) | − 21 (− 10) | 154 (6) | 183 (13) | 51 (7) | 300 (5) | 109 (27) |
Concentrations are given in mg kg−1 soil (% of total P in each extract). MRP is molybdate-reactive P, determined colorimetrically in the Mehlich III extracts. Residue is the residual soil after Mehlich III extraction. Total inorganic P is the sum of orthophosphate, pyrophosphate and polyphosphate. Difference is the difference in between the NaOH-EDTA extracts of whole soils and the NaOH-EDTA extracts of the residue after Mehlich III extraction
Concentrations and percentages of organic P compounds in extracts of whole soil or residues, determined by solution P-NMR spectroscopy
| Extractant | AR-control | AR-N | AR-PL | AR-PL-alum | SK | PEI | Till Ref | ||
|---|---|---|---|---|---|---|---|---|---|
| Phosphonates | Mehlich III | Soil | 1 (2) | 2 (2) | 5 (1) | 5 (1) | 1 (1) | 2 (1) | 0 (1) |
| NaOH-EDTA | Residue | 2 (2) | 2 (1) | 4 (1) | 8 (1) | 3 (2) | 3 (1) | 2 (1) | |
| NaOH-EDTA | Soil | 2 (1) | 5 (1) | 5 (1) | 8 (1) | 5 (1) | 5 (1) | 3 (1) | |
| Glucose 6-phosphate | Mehlich III | Soil | 1 (1) | 1 (1) | 0 (0) | 5 (1) | 1 (1) | 2 (1) | 0 (1) |
| NaOH-EDTA | Residue | 2 (1) | 2 (1) | 4 (1) | 8 (1) | 1 (1) | 3 (1) | 2 (1) | |
| NaOH-EDTA | Soil | 2 (1) | 2 (1) | 5 (1) | 8 (1) | 5 (1) | 5 (1) | 3 (1) | |
| Choline phosphate | Mehlich III | Soil | 1 (1) | 1 (1) | 0 (0) | 5 (1) | 1 (1) | 0 (0) | 0 (1) |
| NaOH-EDTA | Residue | 4 (1) | 5 (2) | 4 (1) | 8 (1) | 3 (1) | 3 (1) | 4 (1) | |
| NaOH-EDTA | Soil | 5 (1) | 4 (1) | 5 (1) | 8 (1) | 2 (1) | 5 (1) | 3 (1) | |
| Unknown 5.1 ppm | Mehlich III | Soil | 1 (1) | 1 (1) | 3 (1) | 5 (1) | 2 (2) | 0 (0) | 0 (1) |
| NaOH-EDTA | Residue | 4 (1) | 5 (2) | 8 (1) | 8 (1) | 8 (4) | 6 (1) | 28 (9) | |
| NaOH-EDTA | Soil | 11 (4) | 9 (3) | 10 (1) | 25 (2) | 15 (4) | 11 (1) | 10 (3) | |
| Monoester 1 | Mehlich III | Soil | 1 (1) | 1 (1) | 3 (1) | 5 (1) | 1 (1) | 2 (1) | 0 (1) |
| NaOH-EDTA | Residue | 2 (1) | 2 (1) | 4 (1) | 8 (1) | 1 (1) | 3 (1) | 2 (1) | |
| NaOH-EDTA | Soil | 2 (1) | 4 (1) | 5 (1) | 8 (1) | 5 (1) | 5 (1) | 3 (1) | |
| Monoester 2 | Mehlich III | Soil | 2 (4) | 3 (4) | 8 (2) | 30 (4) | 6 (6) | 3 (1) | 2 (5) |
| NaOH-EDTA | Residue | 9 (4) | 18 (6) | 12 (2) | 91 (8) | 11 (5) | 6 (1) | 32 (10) | |
| NaOH-EDTA | Soil | 21 (8) | 18 (5) | 14 (1) | 41 (4) | 25 (7) | 16 (2) | 25 (7) | |
| Monoester 3 | Mehlich III | Soil | 2 (3) | 2 (2) | 3 (1) | 5 (1) | 2 (2) | 2 (1) | 0 (1) |
| NaOH-EDTA | Residue | 2 (1) | 5 (1) | 4 (1) | 8 (1) | 3 (1) | 11 (3) | 4 (1) | |
| NaOH-EDTA | Soil | 5 (2) | 7 (2) | 10 (1) | 8 (1) | 5 (1) | 5 (1) | 5 (1) | |
| Degradation | Mehlich III | Soil | 3 (4) | 3 (3) | 3 (1) | 15 (2) | 5 (5) | 3 (1) | 1 (4) |
| NaOH-EDTA | Residue | 23 (9) | 27 (9) | 20 (3) | 54 (5) | 17 (8) | 17 (4) | 68 (21) | |
| NaOH-EDTA | Soil | 25 (9) | 24 (7) | 26 (4) | 58 (5) | 45 (13) | 27 (4) | 27 (8) | |
| DNA | Mehlich III | Soil | 0 (0) | 0 (0) | 0 (0) | 1 (1) | 0 (0) | 0 (0) | 0 (0) |
| NaOH-EDTA | Residue | 2 (1) | 2 (1) | 8 (1) | 1 (0) | 6 (3) | 4 (1) | 8 (2) | |
| NaOH-EDTA | Soil | 3 (1) | 7 (2) | 2 (1) | 11 (1) | 3 (1) | 3 (0) | 3 (1) | |
| Other orthophosphate diesters | Mehlich III | Soil | 1 (1) | 1 (1) | 2 (1) | 4 (1) | 1 (1) | 1 (1) | 1 (2) |
| NaOH-EDTA | Residue | 3 (1) | 4 (1) | 17 (3) | 7 (1) | 6 (3) | 5 (1) | 21 (6) | |
| NaOH-EDTA | Soil | 11 (4) | 10 (3) | 16 (2) | 21 (2) | 9 (3) | 8 (1) | 5 (1) | |
| Total orthophosphate monoesters | Mehlich III | Soil | 27 (42) | 29 (34) | 37 (10) | 308 (46) | 21 (21) | 22 (9) | 6 (19) |
| NaOH-EDTA | Residue | 70 (27) | 99 (32) | 117 (20) | 520 (47) | 60 (30) | 84 (21) | 117 (36) | |
| NaOH-EDTA | Soil | 103 (36) | 129 (40) | 109 (15) | 385 (33) | 116 (34) | 133 (18) | 102 (28) | |
| NaOH-EDTA | Difference | 33 (9) | 31 (7) | − 7 (− 5) | − 134 (− 15) | 55 (5) | 48 (− 4) | 16 (− 8) | |
| Total orthophosphate diesters | Mehlich III | Soil | 4 (6) | 4 (5) | 5 (1) | 20 (3) | 6 (6) | 5 (2) | 2 (6) |
| NaOH-EDTA | Residue | 29 11) | 33 (11) | 45 (8) | 62 (6) | 29 (14) | 25 (6) | 96 (29) | |
| NaOH-EDTA | Soil | 39 (14) | 42 (13) | 49 (7) | 90 (8) | 57 (17) | 37 (5) | 35 (10) | |
| NaOH-EDTA | Difference | 10 (3) | 9 (2) | 5 (− 1) | 28 (2) | 28 (3) | 12 (− 2) | − 61 (− 20) | |
| Mono:Diester ratio | Mehlich III | Soil | 7.2 | 7.1 | 7.0 | 15.7 | 3.3 | 4.4 | 3.0 |
| NaOH-EDTA | Residue | 2.4 | 3.0 | 2.6 | 8.4 | 2.1 | 3.3 | 1.2 | |
| NaOH-EDTA | Soil | 2.6 | 3.1 | 2.2 | 4.3 | 2.0 | 3.6 | 2.9 |
Values are concentration in mg kg−1 (percentage of extract P). Degradation is the sum of compounds in the orthophosphate monoester region known to be products of diester degradation during analysis. Monoester 1, 2 and 3 are the sum of peak areas in these regions after subtracting the peak areas for identified P forms. Mono:Diester ratio: the ratio of orthophosphate monoesters to orthophosphate diesters. Total orthophosphate monoesters, total orthophosphate diesters, and the monoester:diester ratio were corrected for degradation. Residue is the residual soil after Mehlich III extraction. Difference is the difference in between the NaOH-EDTA extracts of whole soils and the NaOH-EDTA extracts of the residue after Mehlich III extraction
Fig. 7A comparison of total inositol hexaphosphate (IHP) concentrations (in mg P kg−1 soil) measured by solution P-NMR and mass spectrometry