Thermodynamic Assessment of the P2O5-Na2O and P2O5-MgO Systems
Abstract
:1. Introduction
2. Review of Literature Data
2.1. P2O5-Na2O System
2.2. P2O5-MgO System
3. Thermodynamic Modeling
3.1. Pure Unary Component
3.2. Liquid Phase
3.3. Intermediate Compounds
4. Results and Discussion
4.1. P2O5-Na2O System
4.2. P2O5-MgO System
5. Conclusions
- A set of self-consistent thermodynamic parameters is derived for the P2O5-Na2O and P2O5-MgO binary systems based on a critical evaluation of the available phase diagram and thermodynamic property data. The calculated phase diagrams and thermodynamic properties employing the obtained thermodynamic parameters well reproduce the data reported in the literature.
- In comparison with the previous assessments using the modified quasi-chemical model for the liquid phase, the present study using the ionic two-sublattice model to express the liquid phase for the first time can describe the experimental data of the P2O5-Na2O and P2O5-MgO binary systems in a better and more reasonable way, particularly the invariant reactions involving the liquid phase. The difference in the phase composition and temperature of invariant reactions from the experimentally determined values reported in the literature is less than 0.9 mol.% and 5K, respectively.
- Four eutectic reactions (L = γ − NaPO3 + O’-P2O5, L = β − Na3PO4 + β − Na2O, L = MgP2O6+ MgP4O11 and L = MgP4O11 + O’ − P2O5) are predicted in the P2O5-Na2O and P2O5-MgO binary systems. The predicted temperatures of these eutectic reactions are 560 K, 1220 K, 1149 K and 773 K, with the corresponding phase compositions X(P2O5) being 82.4 mol%, 18.6 mol%, 62 mol% and 91 mol%, respectively. These predictions await further experimental validation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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System | Compound | Crystal System | Space Group | Reference |
---|---|---|---|---|
P2O5-Na2O | γ-NaPO3 | Orthorhombic | P21P21P21 | [12] |
Orthorhombic | Pnma | [13] | ||
β-NaPO3 | Triclinic | P21/n | [14] | |
α-NaPO3 | Monoclinic | P21/c | [15] | |
β-Na5P3O10 | Monoclinic | C2/c | [16] | |
α-Na5P3O10 | Monoclinic | C2/c | [17] | |
α-Na4P2O7 | Orthorhombic | P21P21P21 | [18] | |
β-Na3PO4 | Tetragonal | P21c | [19] | |
α-Na3PO4 | Cubic | Fmm | [20] | |
Orthorhombic | Pnma | [21] | ||
P2O5-MgO | Mg3P2O8 | Monoclinic | P21/b | [22] |
Monoclinic | P21/n | [23] | ||
Monoclinic | P21/n | [24] | ||
Monoclinic | P21/n | [25] | ||
Triclinic | P | [26] | ||
β-Mg2P2O7 | Monoclinic | P21/c | [27] | |
α-Mg2P2O7 | Monoclinic | C2/m | [28] | |
MgP2O6 | Monoclinic | C2/c | [29] | |
Monoclinic | C2/c | [30] | ||
MgP4O11 | Monoclinic | P21/c | [31] | |
Monoclinic | P21/c | [32] | ||
Orthorhombic | Pmc21 | [33] |
System | Phase | Formula | Thermodynamic Parameter/J·mol−1 |
---|---|---|---|
P2O5-Na2O | Liquid | (Na+1)p(O−2, PO3−1, PO4−3, PO5/2)q | |
Na3PO4_β | (Na+1)3(P+5)1(O−2)4 | ||
Na3PO4_α | (Na+1)3(P+5)1(O−2)4 | ||
Na4P2O7_ζ | (Na+1)4(P+5)2(O−2)7 | ||
Na4P2O7_ε | (Na+1)4(P+5)2(O−2)7 | ||
Na4P2O7_δ | (Na+1)4(P+5)2(O−2)7 | ||
Na4P2O7_γ | (Na+1)4(P+5)2(O−2)7 | ||
Na4P2O7_β | (Na+1)4(P+5)2(O−2)7 | ||
Na4P2O7_α | (Na+1)4(P+5)2(O−2)7 | ||
Na5P3O10_β | (Na+1)5(P+5)3(O−2)10 | ||
Na5P3O10_α | (Na+1)5(P+5)3(O−2)10 | ||
NaPO3_γ | (Na+1)1(P+5)1(O−2)3 | ||
NaPO3_β | (Na+1)1(P+5)1(O−2)3 | ||
NaPO3_α | (Na+1)1(P+5)1(O−2)3 | ||
P2O5-MgO | Liquid | (Mg+2)p(O−2, PO3−1, PO4−3, PO5/2)q | |
Mg3P2O8 | (Mg+2)3(P+5)2(O−2)8 | ||
Mg2P2O7_β | (Mg+2)2(P+5)2(O−2)7 | ||
Mg2P2O7_α | (Mg+2)2(P+5)2(O−2)7 | ||
MgP2O6 | (Mg+2)1(P+5)2(O−2)6 | ||
MgP4O11 | (Mg+2)1(P+5)4(O−2)11 | ||
Function | Temperature range/K | ||
(298.15–1000) | −1639225.067 − 230.7480381T + 21.643407TlnT − 0.1681142T2 + 1.8771510−5T3 + 1758186.5T−1 + 22900.402lnT | ||
(1000–6000) | −1579441.75 + 1382.959261T − 225TlnT | ||
(298.15–1000) | −1665880.067 − 199.4980381T + 21.643407TlnT − 0.1681142T2 + 1.8771510−5T3 + 1758186.5T−1 + 22900.402lnT | ||
(1000–6000) | −1606096.75 + 1414.209261T − 225TlnT | ||
(298.15–1000) | −1666269.067 − 198.3480381T + 21.643407TlnT − 0.1681142T2 + 1.8771510−5T3 + 1758186.5T−1 + 22900.402lnT | ||
(1000–6000) | −1606485.75 + 1415.359261T − 225TlnT | ||
(298.15–1000) | −1631835.067 − 221.1390381T + 21.643407TlnT − 0.1681142T2 + 1.8771510−5T3 + 1758186.5T−1 + 22900.402lnT | ||
(1000–6000) | −1572051.75 + 1392.568261T − 225TlnT | ||
(298.15–1405) | −380898.2803 + 340.194781T − 66.216001TlnT − 0.021932551T2 + 2.3479210−6T3 + 406685.01T−1 | ||
(1405–1500) | −387789.21 + 580.2481164T − 104.6TlnT | ||
(298.15–1405) | −428595.8803 + 374.143281T − 66.216001TlnT − 0.021932551T2 + 2.3479210−6T3 + 406685.01T−1 | ||
(1405–1500) | −435486.81 + 614.1966164T − 104.6TlnT | ||
(298.15–1405) | −440520.2803 + 383.736481T − 66.216001TlnT − 0.021932551T2 + 2.3479210−6T3 + 406685.01T−1 | ||
(1405–1500) | −447411.21 + 623.7898164T − 104.6TlnT | ||
(298.15–1405) | −442277.5603 + 385.454281T − 66.216001TlnT − 0.021932551T2 + 2.3479210−6T3 + 406685.01T−1 | ||
(1405–1500) | −449168.49 + 625.5076164T − 104.6TlnT | ||
(298.15–6000) | + + 0.5 − 520688.946 − 4.353T | ||
(298.15–967) | −3282062.70195 + 815.816308T − 145.08494TlnT − 0.215875T2 + 3.7714810−5T3 + 542554.7741T−1 | ||
(967–1273) | −3322276.2378 + 2062.32142T − 349.82659TlnT | ||
(298.15–6000) | +2.5 + 1.5 − 1144087.404 − 20.487T | ||
(298.15–703) | −1243133.8886 + 264.3713457T − 46.08288TlnT − 0.09082T2 + 1.8044710−5T3 + 188542.1015T−1 | ||
(703–973) | −1256643.34549 + 704.6628499T − 119.50568TlnT | ||
(298.15–1700) | −549098.33 + 275.724634T − 47.4817TlnT − 0.00232681T2 +4.504310−8T3 + 516900T−1 | ||
(1700–2450) | −585159.646 + 506.06825T − 78.3772TlnT + 0.0097344T2 −8.6033810−7T3 + 8591550T−1 | ||
(2450–3100) | +9110429.75−42013.7634T + 5298.548TlnT − 1.30122485T2 + 5.826260110−5T3 − 3.24037416109T−1 | ||
(3100–5100) | −632664.468 + 589.239555T − 84TlnT | ||
(298.15–1700) | −619428.502 + 298.253571T − 47.4817TlnT − 0.00232681T2 +4.504310−8T3 + 516900T−1 | ||
(1700–3100) | −655489.818 + 528.597187T − 78.3772TlnT + 0.0097344T2 −8.6033810−7T3 + 8591550T−1 | ||
(3100–5000) | −171490.159–1409.43369T + 163.674142TlnT − 0.044009535T2 + 1.37489610−6T3−1.72665403108T−1 | ||
(5000–5100) | −722412.718 + 617.657452T−84TlnT | ||
(298.15–1800) | −3863914.664 + 1191.277265T − 195.04422TlnT−0.098665T2 + 9.2252710−6T3 + 1562390.321T−1 | ||
(298.15–1800) | −3217696.802 + 1003.594497T − 165.99611TlnT − 0.07885T2 + 7.9638810−6T3 + 1371185.587T−1 | ||
(298.15–6000) | + + − 240840 + 2.95T | ||
(298.15–6000) | + + – 269030 − 4.29T |
Reaction | Type | Liquid Composition/Mole Fraction Na2O | Temperature/K | Reference |
---|---|---|---|---|
L = γ − NaPO3 + O’ − P2O5 | Eutectic | 0.276 | 560 | This work |
L = β − NaPO3 + α − Na5P3O10 | Eutectic | 0.559 | 824 | [34] |
0.556 | 825 | [35] | ||
0.57 | 819 | [36] | ||
0.543 | 763 | [37] | ||
0.56 | 819 | [39] | ||
0.56 | 833 | [7] | ||
0.563 | 820 | This work | ||
L + α − Na4P2O7 = α − Na5P3O10 | Peritectic | 0.587 | 893 | [34] |
0.588 | 895 | [35] | ||
0.585 | 893 | [37] | ||
0.589 | 893 | [39] | ||
0.575 | 898 | [7] | ||
0.576 | 895 | This work | ||
L = α − Na4P2O7 + β − Na3PO4 | Eutectic | 0.684 | 1218 | [37] |
0.694 | 1225 | [38] | ||
0.6975 | 1217 | [39] | ||
0.691 | 1209 | [7] | ||
0.6999 | 1212 | This work | ||
L = β − Na3PO4 + β − Na2O | Eutectic | 0.814 | 1220 | This work |
Reaction | Type | Liquid Composition/Mole Fraction P2O5 | Temperature/K | Reference |
---|---|---|---|---|
L = MgO + Mg3P2O8 | Eutectic | 0.23 | 1598 | [51] |
- | 1603 | [55] | ||
0.23 | 1596 | [8] | ||
0.23 | 1602 | This work | ||
L = Mg3P2O8 + α − Mg2P2O7 | Eutectic | 0.276 | 1555 | [51] |
0.277 | 1563 | [8] | ||
0.276 | 1558 | This work | ||
L = α − Mg2P2O7 + MgP2O6 | Eutectic | 0.468 | 1423 | [51] |
0.469 | 1410 | [8] | ||
0.469 | 1421 | This work | ||
L = MgP2O6 + MgP4O11 | Eutectic | 0.62 | 1149 | This work |
L = MgP4O11 + O’ − P2O5 | Eutectic | 0.91 | 773 | This work |
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Ye, L.; Li, C.; Yang, J.; Xiao, G.; Deng, Z.; Liu, L.; Zhang, L.; Jiang, Y. Thermodynamic Assessment of the P2O5-Na2O and P2O5-MgO Systems. Materials 2024, 17, 2221. https://doi.org/10.3390/ma17102221
Ye L, Li C, Yang J, Xiao G, Deng Z, Liu L, Zhang L, Jiang Y. Thermodynamic Assessment of the P2O5-Na2O and P2O5-MgO Systems. Materials. 2024; 17(10):2221. https://doi.org/10.3390/ma17102221
Chicago/Turabian StyleYe, Lideng, Chenbo Li, Jifeng Yang, Guangcheng Xiao, Zixuan Deng, Libin Liu, Ligang Zhang, and Yun Jiang. 2024. "Thermodynamic Assessment of the P2O5-Na2O and P2O5-MgO Systems" Materials 17, no. 10: 2221. https://doi.org/10.3390/ma17102221