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{{Short description|Anion, salt, functional group or ester derived from a phosphoric acid}} | |||
In ], a '''phosphate''' is a ] or ] consisting of one ] ] and four ]. In the ionic form, it carries a -3 ], and is denoted '''PO<sub>4</sub><sup>3-</sup>'''. | |||
{{About|the orthophosphate ion|the organophosphorus derivatives|Organophosphate|other phosphates|phosphoric acids and phosphates}} | |||
{{Distinguish|phosphate soda|phosphonate|phosphorus}} | |||
{{Chembox | |||
| Watchedfields = changed | |||
| verifiedrevid = 458267616 | |||
| ImageFile1 = Phosphat-Ion.svg | |||
| ImageFile1_Ref = {{chemboximage|correct|??}} | |||
| ImageSize1 = 140 | |||
| ImageName1 = Stereo skeletal formula of phosphate | |||
| ImageClass1 = skin-invert-image | |||
| ImageFileL1 = Phosphate-3D-balls.png | |||
| ImageFileL1_Ref = {{chemboximage|correct|??}} | |||
| ImageNameL1 = Aromatic ball and stick model of phosphate | |||
| ImageFileR1 = Phosphate-3D-vdW.png | |||
| ImageFileR1_Ref = {{chemboximage|correct|??}} | |||
| ImageNameR1 = Space-filling model of phosphate | |||
| IUPACName = Phosphate<ref>{{cite web|title = Phosphates – PubChem Public Chemical Database|url = https://pubchem.ncbi.nlm.nih.gov/summary/summary.cgi?cid=1061&loc=ec_rcs|work = The PubChem Project|location = USA|publisher = National Center of Biotechnology Information}}</ref> | |||
| OtherNames = Orthophosphate<br />Tetraoxophosphate(V)<br />Tetraoxidophosphate(V) | |||
| Section1 = {{Chembox Identifiers | |||
| CASNo = 14265-44-2 | |||
| CASNo_Ref = {{cascite|correct|CAS}} | |||
| PubChem = 1061 | |||
| ChemSpiderID = 1032 | |||
| ChemSpiderID_Ref = {{chemspidercite|correct|chemspider}} | |||
| MeSHName = Phosphates | |||
| ChEBI_Ref = {{ebicite|correct|EBI}} | |||
| ChEBI = 18367 | |||
| ChEMBL = | |||
| ChEMBL_Ref = | |||
| Beilstein = 3903772 | |||
| Gmelin = 1997 | |||
| UNII_Ref = {{fdacite|correct|FDA}} | |||
| UNII = NK08V8K8HR | |||
| SMILES = P()()=O | |||
| SMILES_Comment = hypervalent form | |||
| SMILES1 = ()() | |||
| SMILES1_Comment = ionic form | |||
| StdInChI = 1S/H3O4P/c1-5(2,3)4/h(H3,1,2,3,4)/p-3 | |||
| StdInChI_Ref = {{stdinchicite|correct|chemspider}} | |||
| StdInChIKey = NBIIXXVUZAFLBC-UHFFFAOYSA-K | |||
| StdInChIKey_Ref = {{stdinchicite|correct|chemspider}} | |||
}} | |||
| Section2 = {{Chembox Properties | |||
| Formula = {{chem|PO|4|3−}} | |||
| ConjugateAcid = ] | |||
| MolarMass = 94.9714 g mol<sup>−1</sup> | |||
}} | |||
}} | |||
In ], a '''phosphate''' is an ], ], ] or ] derived from a ]. It most commonly means '''orthophosphate''', a ] of orthophosphoric acid, {{aka}} ] {{chem2|H3PO4}}. | |||
In a biochemical setting, a free phosphate ion in solution is called '''inorganic phosphate''', to distinguish it from phosphates bound in the form of ], or perhaps in ] or ]. Inorganic phosphate is generally denoted '''P<sub>i</sub>'''. Inorganic phosphate can be formed by the reactions of ], or ], with the formation of the corresponding ] or ], and the release of phosphate ion. Similar reactions exist for the other ] triphosphates and diphosphates. | |||
The '''phosphate''' or '''orthophosphate''' ion {{chem||3−}} is derived from phosphoric acid by the removal of three ]s {{chem|H|+}}. Removal of one proton gives the '''dihydrogen phosphate''' ion {{chem||−}} while removal of two protons gives the '''hydrogen phosphate''' ion {{chem||2−}}. These names are also used for salts of those anions, such as ] and ]. | |||
In living systems, phosphate ions can also be created by the hydrolysis of a larger ion called ], which has the structure P<sub>2</sub>O<sub>7</sub><sup>4-</sup>, and is denoted '''PP<sub>i</sub>'''. | |||
<gallery heights="110" mode="packed"> | |||
* P<sub>2</sub>O<sub>7</sub><sup>4-</sup> + H<sub>2</sub>O → 2HPO<sub>4</sub><sup>2-</sup> | |||
File:3-phosphoric-acid-3D-balls.png|{{chem|H|3|PO|4}}<br />] | |||
File:2-dihydrogenphosphate-3D-balls.png|{{chem||-}}<br />] | |||
File:1-hydrogenphosphate-3D-balls.png|{{chem||2−}}<br />] | |||
File:0-phosphate-3D-balls.png|{{chem||3−}}<br />'''Phosphate''' or '''orthophosphate''' | |||
</gallery> | |||
In ], '''phosphate''' or '''orthophosphate''' is an ], an ester of orthophosphoric acid of the form {{chem|PO|4|RR′R″}} where one or more hydrogen atoms are replaced by ] groups. An example is ], {{chem|(CH|3|)|3|PO|4}}. The term also refers to the ] functional group {{chem|OP|(O-)|3}} in such esters. Phosphates may contain sulfur in place of one or more oxygen atoms (]s and ]s). | |||
Energy stored by phosphate bonds in the form of ] or ], or other ] diphosphates or triphosphates, or the ]s in muscle tissues, is generally referred to as ]. | |||
Orthophosphates are especially important among the various ] because of their key roles in ], ], and ], and their economic importance for ] and industry.<ref name=PhosphatePrimer>{{cite web |url=http://www.fipr.state.fl.us/about-us/phosphate-primer/ |title=Phosphate Primer |url-status=live |archive-url=https://web.archive.org/web/20170829055956/http://www.fipr.state.fl.us/about-us/phosphate-primer/ |archive-date=29 August 2017 |website=Florida Industrial and Phosphate Research Institute |publisher=Florida Polytechnic University |access-date=30 March 2018 }}</ref> The addition and removal of phosphate groups (] and ]) are key steps in ] ]. | |||
] to demonstrate size]] | |||
In ] and ], it refers to a rock or ore containing phosphate ions. | |||
In ] terms, phosphate is often a ] in many environments--the availability of phosphate governs the rate of growth of many organisms. Introduction of non-naturally occurring levels of phosphate to those environments causes an ecological disequilibrium, leading to booms in the population of some organisms and subsequent busts in the populations of others deprived of other nutrients or essential elements by the rapid growth and consumption by the booming population. | |||
] can ] to form ]s. | |||
Phosphates are often used in laundry ] as a water softener, but because of boom-bust cycles tied to emission of phosphates into watersheds, phosphate detergent sale or usage is restricted in some areas. | |||
==Chemical properties== | |||
In ] phosphate refers to one of the three primary ] nutrients, and it is a component of ]s. ] phosphate is ] from phosphate beds in ]s. In former times it was simply crushed and used as is, but the crude form is now used only in ]. Normally it is chemically treated to make ], which has a higher concentration of phosphate and is also more ], therefore more quickly usable by plants. | |||
The phosphate ion has a ] of 94.97 g/mol, and consists of a central ] atom surrounded by four ] atoms in a ] arrangement. It is the ] of the hydrogen phosphate ion {{chem|H(PO|4|)|2−}}, which in turn is the conjugate base of the dihydrogen phosphate ion {{chem|H|2|(PO|4|)|−}}, which in turn is the conjugate base of ], {{chem|H|3|PO|4}}. | |||
Many phosphates are ] in ] at ]. The sodium, potassium, ], ], and ] are all water-soluble. Most other phosphates are only slightly soluble or are insoluble in water. As a rule, the hydrogen and dihydrogen phosphates are slightly more soluble than the corresponding phosphates. | |||
Fertilizer grades normally have three numbers; the first is the available ], the second is the available phosphate, and the third is the available ]. Thus a 10-10-10 fertilizer would contain ten percent of each, with the remainder being filler. | |||
===Equilibria in solution=== | |||
The largest rock phosphate deposits in ] are in ] and ]. The largest in the world are in ], which used to have phosphate of best quality. | |||
]]] | |||
In water solution, orthophosphoric acid and its three derived anions coexist according to the dissociation and recombination equilibria below<ref>{{cite book|last = Campbell|first = Neil A.|author-link = Neil Campbell (scientist)|author2=Reece, Jane B.|title = Biology|edition = Seventh|publisher = ]|year = 2005|location = San Francisco, California|page = 65|isbn = 0-8053-7171-0 }}</ref> | |||
{| class="wikitable" | |||
! Equilibrium | |||
! Dissociation constant ''K''<sub>a</sub><ref name=pow2005/> | |||
! p''K''<sub>''a''</sub> | |||
|- | |||
| {{chem2|H<sub>3</sub>PO<sub>4</sub> <-> H2PO4- + H+}} | |||
| <math chem>K_{a1} = \frac{}{} \approx 7.5 \times 10^{-3}</math> | |||
| p''K''<sub>a1</sub> = 2.14 | |||
|- | |||
| {{chem2|H2PO4- <-> HPO4(2-) + H+}} | |||
| <math chem>K_{a2} = \frac{}{} \approx 6.2 \times 10^{-8}</math> | |||
| p''K''<sub>a2</sub> = 7.20 | |||
|- | |||
| {{chem2|HPO4(2-) <-> PO4(3-) + H+}} | |||
| <math chem>K_{a3} = \frac{}{} \approx 2.14 \times 10^{-13}</math> | |||
| p''K''<sub>a3</sub> = 12.37 | |||
|} | |||
Values are at 25{{nbsp}}°C and 0 ionic strength. | |||
The p''K''<sub>''a''</sub> values are the ] values where the concentration of each species is equal to that of its ]s. At pH 1 or lower, the phosphoric acid is practically undissociated. Around pH 4.7 (mid-way between the first two p''K''<sub>''a''</sub> values) the dihydrogen phosphate ion, {{chem||−}}, is practically the only species present. Around pH 9.8 (mid-way between the second and third p''K''<sub>''a''</sub> values) the monohydrogen phosphate ion, {{chem||2−}}, is the only species present. At pH 13 or higher, the acid is completely dissociated as the phosphate ion, {{chem|(PO|4|)|3−}}. | |||
Leaching of phosphates from fertilized farmland can be a cause of phosphate ] of surface water, causing ] and consequent ] deficit for ] in the same manner as phosphate-based detergents. | |||
This means that salts of the mono- and di-phosphate ions can be selectively crystallised from aqueous solution by setting the pH value to either 4.7 or 9.8. | |||
== See also == | |||
In effect, {{chem|H|3|PO|4}}, {{chem|H|2|(PO|4|)|−}} and {{chem|H(PO|4|)|2−}} behave as separate ]s because the successive p''K''<sub>''a''</sub> differ by more than 4. | |||
* ] | |||
Phosphate can form many ]ic ions such as ], {{chem|(P|2|O|7|)|4-}}, and ], {{chem|(P|3|O|10|)|5-}}. The various ] ions (which are usually long linear polymers) have an empirical formula of {{chem|(PO|3|)|−}} and are found in many compounds. | |||
===Biochemistry of phosphates=== | |||
] | |||
<!-- This heading is an anchor linked from other articles --> | |||
In ]s, phosphorus can be found as free phosphate anions in solution ('''inorganic phosphate''') or bound to organic molecules as various ]s<ref>Jastrzab Renata, Nowak Martyna, Zabiszak Michał, Odani Akira, Kaczmarek Małgorzata T. ''Coordination Chemistry Reviews'' | |||
Volume 435, 15 May 2021, 213810</ref>. | |||
Inorganic phosphate is generally denoted '''P<sub>i</sub>''' and at physiological (]) ] primarily consists of a mixture of {{chem||2−}} and {{chem||−}} ions. At a neutral pH, as in the ] (pH = 7.0), the concentrations of the orthophoshoric acid and its three anions have the ratios | |||
] ] ] ] | |||
<math chem display=block>\begin{align} | |||
\frac{}{} &\approx 7.5 \times 10^4 \\ | |||
\frac{}{} &\approx 0.62 \\ | |||
\frac{}{} &\approx 2.14 \times 10^{-6} | |||
\end{align}</math> | |||
Thus, only {{chem||−}} and {{chem||2−}} ions are present in significant amounts in the cytosol (62% {{chem||−}}, 38% {{chem||2−}}). In extracellular fluid (pH = 7.4), this proportion is inverted (61% {{chem||2−}}, 39% {{chem||−}}). | |||
Inorganic phosphate can also be present as ] anions {{chem||4-}}, which give orthophosphate by ]: | |||
:{{chem||4-}} + H<sub>2</sub>O {{eqm}} 2 {{chem||2−}} | |||
Organic phosphates are commonly found in the form of esters as ]s (e.g. ], ], and ]) and in ] and ]. Free orthophosphate anions can be released by the hydrolysis of the ] bonds in ATP or ADP. These ] and ] reactions are the immediate storage and source of energy for many ] processes. ATP and ADP are often referred to as ]s, as are the ]s in muscle tissue. Similar reactions exist for the other nucleoside ] and ]. | |||
===Bones and teeth=== | |||
An important occurrence of phosphates in biological systems is as the structural material of bone and teeth. These structures are made of crystalline ] in the form of ]. The hard dense enamel of ] may contain ], a ] calcium phosphate where some of the ] groups have been replaced by ] ions. | |||
===Medical and biological research uses=== | |||
Phosphates are medicinal salts of phosphorus. Some phosphates, which help cure many ]s, are used to make urine more acidic. To avoid the development of ]s in the urinary tract, some phosphates are used.<ref name=":0">{{Cite web|title=Phosphate Supplement (Oral Route, Parenteral Route) Description and Brand Names - Mayo Clinic|url=https://www.mayoclinic.org/drugs-supplements/phosphate-supplement-oral-route-parenteral-route/description/drg-20070193|access-date=2020-11-20|website=www.mayoclinic.org}}</ref> For patients who are unable to get enough phosphorus in their daily diet, phosphates are used as dietary supplements, usually because of certain disorders or diseases.<ref name=":0" /> Injectable phosphates can only be handled by qualified health care providers.<ref name=":0" /> | |||
===Plant metabolism=== | |||
Plants take up phosphorus through several pathways: the ] pathway and the direct uptake pathway. | |||
== Adverse health effects == | |||
{{More citations needed|date=July 2022}} | |||
], or a high blood level of phosphates, is associated with elevated ] in the general population. The most common cause of hyperphosphatemia in people, dogs, and cats is kidney failure. In cases of hyperphosphatemia, limiting consumption of phosphate-rich foods, such as some meats and dairy items and foods with a high phosphate-to-protein ratio, such as soft drinks, fast food, processed foods, condiments, and other products containing phosphate-salt additives is advised.<ref>Renal Dietitian Team, '''', Oxford University Hospitals NHS Foundation Trust, 2022 review </ref> | |||
Phosphates induce vascular ], and a high concentration of phosphates in blood was found to be a predictor of ].<ref name=":1">{{Cite journal|last1=Ritz|first1=Eberhard|last2=Hahn|first2=Kai|last3=Ketteler|first3=Markus|last4=Kuhlmann|first4=Martin K.|last5=Mann|first5=Johannes|date=January 2012|title=Phosphate additives in food--a health risk|journal=Deutsches Ärzteblatt International|volume=109|issue=4|pages=49–55|doi=10.3238/arztebl.2012.0049|issn=1866-0452|pmc=3278747|pmid=22334826}}</ref> | |||
==Production== | |||
===Geological occurrence=== | |||
], US, 2008]] | |||
], Tunisia, 2012]] | |||
Phosphates are the naturally occurring form of the element ], found in many ]s. In mineralogy and geology, phosphate refers to a rock or ore containing phosphate ions. Inorganic phosphates are ] to obtain phosphorus for use in agriculture and industry.<ref name=PhosphatePrimer/> | |||
The largest global producer and exporter of phosphates is ]. Within North America, the largest deposits lie in the ] region of central ], the ] region of southeastern ], and the coast of ]. Smaller deposits are located in ], ], ], and ]. The small island nation of ] and its neighbor ], which used to have massive phosphate deposits of the best quality, have been mined excessively. Rock phosphate can also be found in Egypt, Israel, Palestine, Western Sahara, ], Tunisia, Togo, and Jordan, countries that have large phosphate-mining industries. | |||
] mines are primarily found in: | |||
* '''North America''': {{main|Phosphate mining in the United States}} United States, especially Florida, with lesser deposits in ], ], and ] | |||
* '''Africa''': ], ], ], ], ], ], ], ] | |||
* '''Middle East''': ], ], ], ], ] and ], at the town of ], near the Jordanian border. | |||
* '''Central Asia''': ] | |||
* '''Oceania''': ], ], ], and ] | |||
In 2007, at the current rate of consumption, the supply of phosphorus was estimated to run out in 345 years.<ref>{{cite journal|date=May 26, 2007|journal = ]|volume = 194|issue = 2605|pages = 38–9|title = How Long Will it Last?|doi=10.1016/S0262-4079(07)61508-5|bibcode = 2007NewSc.194...38R |last1 = Reilly|first1 = Michael}}</ref> However, some scientists thought that a "]" would occur in 30 years and ] from Institute for Sustainable Futures said <!-- in Times --> that at "current rates, reserves will be depleted in the next 50 to 100 years".<ref name=Lewis>{{cite news|url = http://business.timesonline.co.uk/tol/business/industry_sectors/natural_resources/article4193017.ece|archive-url = https://web.archive.org/web/20080905082511/http://business.timesonline.co.uk/tol/business/industry_sectors/natural_resources/article4193017.ece|url-status = dead|archive-date = September 5, 2008|title = Scientists warn of lack of vital phosphorus as biofuels raise demand|date = 2008-06-23|author = Leo Lewis|newspaper = The Times}}</ref> Reserves refer to the amount assumed recoverable at current market prices. In 2012 the ] estimated world reserves at 71 billion tons, while 0.19 billion tons were mined globally in 2011.<ref>U.S. Geological Survey </ref> Phosphorus comprises 0.1% by mass of the average rock<ref>] {{cite web| url = http://pubs.usgs.gov/of/2004/1368/Soil_PDFs/P_soils_page.pdf| title = Phosphorus Soil Samples}}</ref> (while, for perspective, its typical concentration in vegetation is 0.03% to 0.2%),<ref>{{cite web|author=Floor Anthoni |url=http://www.seafriends.org.nz/oceano/abund.htm |title=Abundance of Elements |publisher=Seafriends.org.nz |access-date=2013-01-10}}</ref> and consequently there are quadrillions of tons of phosphorus in Earth's 3×10<sup>19</sup>-ton crust,<ref>], Fall Meeting 2007, abstract #V33A-1161. </ref> albeit at predominantly lower concentration than the deposits counted as reserves, which are inventoried and cheaper to extract. If it is assumed that the phosphate minerals in ] are mainly hydroxyapatite and fluoroapatite, phosphate minerals contain roughly 18.5% phosphorus by weight. If phosphate rock contains around 20% of these minerals, the average phosphate rock has roughly 3.7% phosphorus by weight. | |||
Some phosphate rock deposits, such as ] in Florida,<ref name="Mulberry, Phosphate" /> are notable for their inclusion of significant quantities of radioactive uranium isotopes. This is a concern because radioactivity can be released into surface waters<ref>{{cite encyclopedia |author=C. Michael Hogan |year=2010 |url=http://www.eoearth.org/article/Water_pollution |title=Water pollution |encyclopedia=] |editor=Mark McGinley and C. Cleveland (Washington, DC.: ]) |archive-url=https://web.archive.org/web/20100916050147/http://www.eoearth.org/article/Water_pollution |archive-date=2010-09-16}}</ref> from application of the resulting ]. | |||
In December 2012, ] announced an updated ] compliant resource of their Hinda project in ] of 531 million tons, making it the largest measured and indicated phosphate deposit in the world.<ref>{{cite web|title=Updated Hinda Resource Announcement: Now world's largest phosphate deposit (04/12/2012)|url=http://www.comincoresources.com/news/updated-hinda-resource-announcement-now-worlds-largest-phosphate-deposit-04|publisher=]|access-date=2013-05-03|archive-url=https://web.archive.org/web/20161005113748/http://www.comincoresources.com/news/updated-hinda-resource-announcement-now-worlds-largest-phosphate-deposit-04|archive-date=2016-10-05|url-status=dead}}</ref> | |||
Around 2018, Norway discovered phosphate deposits almost equal to those in the rest of Earth combined.<ref>{{cite news |url=https://www.dw.com/en/eu-pins-hope-on-norway-raw-materials-discovery/a-56343829 |title=EU pins hope on Norway's raw materials |last1=Bushuev |first1=Mikhail |date=26 January 2021 |accessdate=2 July 2023}}</ref><ref>{{cite web | url=https://www.euractiv.com/section/energy-environment/news/great-news-eu-hails-discovery-of-massive-phosphate-rock-deposit-in-norway/ | title='Great news': EU hails discovery of massive phosphate rock deposit in Norway | date=29 June 2023 }}</ref> | |||
In July 2022 China announced quotas on phosphate exportation.<ref>{{cite news | url=https://www.reuters.com/article/china-fertilizers-quotas/china-issues-phosphate-quotas-to-rein-in-fertiliser-exports-analysts-idUSKBN2OQ0KY | title=China issues phosphate quotas to rein in fertiliser exports - analysts | newspaper=Reuters | date=15 July 2022 }}</ref> | |||
The largest importers in millions of metric tons of phosphate are Brazil 3.2, India 2.9 and the USA 1.6.<ref>{{cite web | url=https://www.nationmaster.com/nmx/ranking/phosphate-fertilizer-imports | title=Top countries for Phosphate Fertilizer Imports }}</ref> | |||
===Mining=== | |||
] | |||
The three principal phosphate producer countries (China, Morocco and the United States) account for about 70% of world production. | |||
{| class="wikitable centre sortable width=80%;" | |||
|+ Production and global reserves of natural phosphate by country in 2019<br /><small>(USGS, 2021)</small><ref>{{cite web| url = https://pubs.usgs.gov/periodicals/mcs2021/mcs2021-phosphate.pdf| title = PHOSPHATE ROCK, usgs}}</ref> | |||
! Country !! Production <br />(millions kg) !! Share of <br /> global <br /> production (%) !! Reserves<br />(millions kg) | |||
|- | |||
| ] || align="right" | {{formatnum:1300}} || align="right" | 0.54 || align="right" | {{formatnum:2200000}} | |||
|- | |||
| ] || align="right" | {{formatnum:2700}} || align="right" | 1.17 || align="right" | {{formatnum:1100000}} | |||
|- | |||
| ] || align="right" | {{formatnum:4700}} || align="right" | 3.00 || align="right" | {{formatnum:1600000}} | |||
|- | |||
| ] || align="right" | {{formatnum:95000}} || align="right" | 44.83 || align="right" | {{formatnum:3200000}} | |||
|- | |||
| ] || align="right" | {{formatnum:5000}} || align="right" | 2.47 || align="right" | {{formatnum:2800000}} | |||
|- | |||
|] || align="right" | {{formatnum:995}} || align="right" | - || align="right" | {{formatnum:1000000}} | |||
|- | |||
| ] || align="right" | {{formatnum:1,480}} || align="right" | 0.49 || align="right" | {{formatnum:46000}} | |||
|- | |||
| ] || align="right" | {{formatnum:200}} || align="right" | 0.09 || align="right" | {{formatnum:430000}} | |||
|- | |||
| ] || align="right" | {{formatnum:2,810}} || align="right" | 1.48 || align="right" | {{formatnum:57000}} | |||
|- | |||
| ] || align="right" | {{formatnum:9,220}} || align="right" | 3.36 || align="right" | {{formatnum:800000}} | |||
|- | |||
| ] || align="right" | {{formatnum:1500}} || align="right" | 0.72 || align="right" | {{formatnum:260000}} | |||
|- | |||
| ] || align="right" | {{formatnum:558}} || align="right" | 0.76 || align="right" | {{formatnum:30000}} | |||
|- | |||
| ] and ] || align="right" |{{formatnum:35500}} || align="right" | 13.45 || align="right" | {{formatnum:50000000}} | |||
|- | |||
| ] || align="right" | {{formatnum:4000}} || align="right" | 1.79 || align="right" | {{formatnum:210000}} | |||
|- | |||
| ] || align="right" | {{formatnum:13100}} || align="right" | 5.60 || align="right" | {{formatnum:600000}} | |||
|- | |||
| ] || align="right" | {{formatnum:6500}} || align="right" | 1.48 || align="right" | {{formatnum:1400000}} | |||
|- | |||
| ] || align="right" | {{formatnum:3,420}} || align="right" | 0.45 || align="right" | {{formatnum:50000}} | |||
|- | |||
| ] || align="right" | {{formatnum:2100}} || align="right" | 0.99 || align="right" | {{formatnum:1400000}} | |||
|- | |||
| ] || align="right" | {{formatnum:2000}} || align="right" | 0.34 || align="right" | {{formatnum:1800000}} | |||
|- | |||
| ] || align="right" | {{formatnum:800}} || align="right" | 0.45 || align="right" | {{formatnum:30000}} | |||
|- | |||
| ] || align="right" | {{formatnum:4,110}} || align="right" | 1.79 || align="right" | {{formatnum:100000}} | |||
|- | |||
|] || align="right" | {{formatnum:900}} || align="right" | - || align="right" | {{formatnum:100000}} | |||
|- | |||
| ] || align="right" | {{formatnum:23300}} || align="right" | 12.37 || align="right" | {{formatnum:1000000}} | |||
|- | |||
| ] || align="right" | {{formatnum:4,650}} || align="right" | 1.21 || align="right" | {{formatnum:30000}} | |||
|-class="sortbottom" | |||
| Other countries || align="right" | {{formatnum:1,140}} || align="right" | 1.17 || align="right" | {{formatnum:840000}} | |||
|-class="sortbottom" style="background: #EFEFEF" | |||
| '''Total''' || align="right" | '''{{formatnum:227000}}''' || align="right" | '''100''' || align="right" | '''{{formatnum:71000000}}''' | |||
|} | |||
== Ecology ==<!-- Other articles link here --> | |||
]]] | |||
] in various regions of the ocean. Note that nitrate is more often limiting than phosphate. See the ].]] | |||
In ecological terms, because of its important role in biological systems, phosphate is a highly sought after resource. Once used, it is often a limiting nutrient in ], and its availability may govern the rate of growth of organisms. This is generally true of ] environments, whereas nitrogen is more often the limiting nutrient in marine (seawater) environments. Addition of high levels of phosphate to environments and to micro-environments in which it is typically rare can have significant ecological consequences. For example, blooms in the populations of some organisms at the expense of others, and the collapse of populations deprived of resources such as oxygen (see ]) can occur. In the context of pollution, phosphates are one component of ], a major indicator of water quality, but not all phosphorus is in a molecular form that algae can break down and consume.<ref>{{cite web|last=Hochanadel|first=Dave|title=Limited amount of total phosphorus actually feeds algae, study finds|url=http://www.lakescientist.com/2010/limited-amount-of-total-phosphorus-actually-feeds-algae-study-finds|publisher=Lake Scientist|access-date=June 10, 2012|date=December 10, 2010|quote=ioavailable phosphorus – phosphorus that can be utilized by plants and bacteria – is only a fraction of the total, according to Michael Brett, a UW engineering professor ...}}</ref> | |||
Calcium hydroxyapatite and calcite precipitates can be found around ] in ] topsoil.<ref name=Schmittner>{{cite journal |author=Schmittner KE, Giresse P |title=Micro-environmental controls on biomineralization: superficial processes of apatite and calcite precipitation in Quaternary soils, Roussillon, France |journal=Sedimentology |volume=46 |issue=3 |year=1999 |pages=463–76 |doi=10.1046/j.1365-3091.1999.00224.x|bibcode=1999Sedim..46..463S |s2cid=140680495 }}</ref> As clay minerals promote biomineralization, the presence of bacteria and clay minerals resulted in calcium hydroxyapatite and calcite precipitates.<ref name=Schmittner/> | |||
Phosphate deposits can contain significant amounts of naturally occurring heavy metals. Mining operations processing ] can leave ] piles containing elevated levels of ], ], ], ], ], and ]. Unless carefully managed, these waste products can leach heavy metals into groundwater or nearby estuaries. Uptake of these substances by plants and marine life can lead to concentration of toxic heavy metals in food products.<ref>{{cite journal|last1 = Gnandi|first1 = K.|last2 = Tchangbedjil|first2 = G.|last3 = Killil|first3 = K.|last4 = Babal|first4 = G.|last5 = Abbel|first5 = E.|title = The Impact of Phosphate Mine Tailings on the Bioaccumulation of Heavy Metals in Marine Fish and Crustaceans from the Coastal Zone of Togo|periodical = Mine Water and the Environment|volume = 25|issue = 1|date = March 2006|pages = 56–62|doi = 10.1007/s10230-006-0108-4| bibcode=2006MWE....25...56G |s2cid = 129497587}}</ref> | |||
==See also== | |||
{{div col|colwidth=20em}} | |||
* ] - (NH<sub>4</sub>)<sub>2</sub>HPO<sub>4</sub> | |||
* ] – Na<sub>2</sub>HPO<sub>4</sub> | |||
* ] | |||
* ] – {{chem|H|2|(PO|2|)|−}} | |||
* ] – {{chem|(P|O|3|)|''n''}} | |||
* ] – NaH<sub>2</sub>PO<sub>4</sub> | |||
* ] compounds | |||
* ] | |||
* Phosphate – OP(OR)<sub>3</sub>, such as ] | |||
* ] | |||
* ], a soda fountain beverage | |||
* ] – OP(OR)R<sub>2</sub> | |||
* ] – PR<sub>3</sub> | |||
* ] – OPR<sub>3</sub> | |||
* ] – P(OR)R<sub>2</sub> | |||
* ] – P(OR)<sub>3</sub> | |||
* ] | |||
* ] – OP(OR)<sub>2</sub>R | |||
* ] – P(OR)<sub>2</sub>R | |||
* ] | |||
* ] – {{chem|(H|P|O|3|)|''n''}} | |||
* ] – {{chem|(P|2|O|7|)|4−}} | |||
* ] – Na<sub>5</sub>P<sub>3</sub>O<sub>10</sub> | |||
{{div col end}} | |||
==References== | |||
{{Reflist|refs= | |||
<ref name=pow2005>Kipton J. Powell, Paul L. Brown, Robert H. Byrne, Tamás Gajda, Glenn Hefter, Staffan Sjöberg, Hans Wanner (2005): "Chemical speciation of environmentally significant heavy metals with inorganic ligands. Part 1: The {{chem|Hg|2+}}, Cl<sup>−</sup>, OH<sup>−</sup>, {{chem|CO|3|2−}}, {{chem|SO|4|2−}}, and {{chem|PO|4|3−}} aqueous systems". ''Pure and Applied Chemistry'', volume 77, issue 4, pages 739–800. {{doi|10.1351/pac200577040739}}</ref> | |||
<ref name="Mulberry, Phosphate" >{{Cite book | |||
|title=Central Florida Phosphate Industry: Environmental Impact Statement | |||
|volume=2 | |||
|publisher=United States. Environmental Protection Agency | |||
|year=1979 | |||
|url=https://books.google.com/books?id=Q_g0AQAAMAAJ&pg=SA2-PA26 | |||
}}</ref> | |||
}} | |||
==External links== | |||
{{Commons category|Phosphates}} | |||
* provides data graphics covering consumption, production, imports, exports and price for phosphate and 86 other minerals | |||
* – The Association for Clinical Biochemistry and Laboratory Medicine | |||
* {{cite EB1911 |wstitle=Phosphates |volume=21 |pages=474–476 |short=1}} | |||
{{Phosphates}} | |||
{{Phosphate minerals}} | |||
{{Authority control}} | |||
] | |||
] | |||
] | |||
] | |||
] | |||
] |
Latest revision as of 17:14, 17 January 2025
Anion, salt, functional group or ester derived from a phosphoric acid This article is about the orthophosphate ion. For the organophosphorus derivatives, see Organophosphate. For other phosphates, see phosphoric acids and phosphates. Not to be confused with phosphate soda, phosphonate, or phosphorus.
| |||
Names | |||
---|---|---|---|
IUPAC name Phosphate | |||
Other names
Orthophosphate Tetraoxophosphate(V) Tetraoxidophosphate(V) | |||
Identifiers | |||
CAS Number | |||
3D model (JSmol) |
| ||
Beilstein Reference | 3903772 | ||
ChEBI | |||
ChemSpider | |||
Gmelin Reference | 1997 | ||
MeSH | Phosphates | ||
PubChem CID | |||
UNII | |||
InChI
| |||
SMILES
| |||
Properties | |||
Chemical formula | PO 4 | ||
Molar mass | 94.9714 g mol | ||
Conjugate acid | Monohydrogen phosphate | ||
Except where otherwise noted, data are given for materials in their standard state (at 25 °C , 100 kPa). Y verify (what is ?) Infobox references |
In chemistry, a phosphate is an anion, salt, functional group or ester derived from a phosphoric acid. It most commonly means orthophosphate, a derivative of orthophosphoric acid, a.k.a. phosphoric acid H3PO4.
The phosphate or orthophosphate ion
is derived from phosphoric acid by the removal of three protons H
. Removal of one proton gives the dihydrogen phosphate ion
while removal of two protons gives the hydrogen phosphate ion
. These names are also used for salts of those anions, such as ammonium dihydrogen phosphate and trisodium phosphate.
-
H
3PO
4
Phosphoric
acid -
Dihydrogen
phosphate -
Hydrogen
phosphate -
Phosphate or orthophosphate
In organic chemistry, phosphate or orthophosphate is an organophosphate, an ester of orthophosphoric acid of the form PO
4RR′R″ where one or more hydrogen atoms are replaced by organic groups. An example is trimethyl phosphate, (CH
3)
3PO
4. The term also refers to the trivalent functional group OP(O-)
3 in such esters. Phosphates may contain sulfur in place of one or more oxygen atoms (thiophosphates and organothiophosphates).
Orthophosphates are especially important among the various phosphates because of their key roles in biochemistry, biogeochemistry, and ecology, and their economic importance for agriculture and industry. The addition and removal of phosphate groups (phosphorylation and dephosphorylation) are key steps in cell metabolism.
Orthophosphates can condense to form pyrophosphates.
Chemical properties
The phosphate ion has a molar mass of 94.97 g/mol, and consists of a central phosphorus atom surrounded by four oxygen atoms in a tetrahedral arrangement. It is the conjugate base of the hydrogen phosphate ion H(PO
4)
, which in turn is the conjugate base of the dihydrogen phosphate ion H
2(PO
4)
, which in turn is the conjugate base of orthophosphoric acid, H
3PO
4.
Many phosphates are soluble in water at standard temperature and pressure. The sodium, potassium, rubidium, caesium, and ammonium phosphates are all water-soluble. Most other phosphates are only slightly soluble or are insoluble in water. As a rule, the hydrogen and dihydrogen phosphates are slightly more soluble than the corresponding phosphates.
Equilibria in solution
In water solution, orthophosphoric acid and its three derived anions coexist according to the dissociation and recombination equilibria below
Equilibrium | Dissociation constant Ka | pKa |
---|---|---|
H3PO4 ⇌ H2PO−4 + H | pKa1 = 2.14 | |
H2PO−4 ⇌ HPO2−4 + H | pKa2 = 7.20 | |
HPO2−4 ⇌ PO3−4 + H | pKa3 = 12.37 |
Values are at 25 °C and 0 ionic strength.
The pKa values are the pH values where the concentration of each species is equal to that of its conjugate bases. At pH 1 or lower, the phosphoric acid is practically undissociated. Around pH 4.7 (mid-way between the first two pKa values) the dihydrogen phosphate ion,
, is practically the only species present. Around pH 9.8 (mid-way between the second and third pKa values) the monohydrogen phosphate ion,
, is the only species present. At pH 13 or higher, the acid is completely dissociated as the phosphate ion, (PO
4)
.
This means that salts of the mono- and di-phosphate ions can be selectively crystallised from aqueous solution by setting the pH value to either 4.7 or 9.8.
In effect, H
3PO
4, H
2(PO
4)
and H(PO
4)
behave as separate weak acids because the successive pKa differ by more than 4.
Phosphate can form many polymeric ions such as pyrophosphate, (P
2O
7)
, and triphosphate, (P
3O
10)
. The various metaphosphate ions (which are usually long linear polymers) have an empirical formula of (PO
3)
and are found in many compounds.
Biochemistry of phosphates
In biological systems, phosphorus can be found as free phosphate anions in solution (inorganic phosphate) or bound to organic molecules as various organophosphates.
Inorganic phosphate is generally denoted Pi and at physiological (homeostatic) pH primarily consists of a mixture of
and
ions. At a neutral pH, as in the cytosol (pH = 7.0), the concentrations of the orthophoshoric acid and its three anions have the ratios
Thus, only
and
ions are present in significant amounts in the cytosol (62%
, 38%
). In extracellular fluid (pH = 7.4), this proportion is inverted (61%
, 39%
).
Inorganic phosphate can also be present as pyrophosphate anions
, which give orthophosphate by hydrolysis:
+ H2O ⇌ 2
Organic phosphates are commonly found in the form of esters as nucleotides (e.g. AMP, ADP, and ATP) and in DNA and RNA. Free orthophosphate anions can be released by the hydrolysis of the phosphoanhydride bonds in ATP or ADP. These phosphorylation and dephosphorylation reactions are the immediate storage and source of energy for many metabolic processes. ATP and ADP are often referred to as high-energy phosphates, as are the phosphagens in muscle tissue. Similar reactions exist for the other nucleoside diphosphates and triphosphates.
Bones and teeth
An important occurrence of phosphates in biological systems is as the structural material of bone and teeth. These structures are made of crystalline calcium phosphate in the form of hydroxyapatite. The hard dense enamel of mammalian teeth may contain fluoroapatite, a hydroxy calcium phosphate where some of the hydroxyl groups have been replaced by fluoride ions.
Medical and biological research uses
Phosphates are medicinal salts of phosphorus. Some phosphates, which help cure many urinary tract infections, are used to make urine more acidic. To avoid the development of calcium stones in the urinary tract, some phosphates are used. For patients who are unable to get enough phosphorus in their daily diet, phosphates are used as dietary supplements, usually because of certain disorders or diseases. Injectable phosphates can only be handled by qualified health care providers.
Plant metabolism
Plants take up phosphorus through several pathways: the arbuscular mycorrhizal pathway and the direct uptake pathway.
Adverse health effects
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Hyperphosphatemia, or a high blood level of phosphates, is associated with elevated mortality in the general population. The most common cause of hyperphosphatemia in people, dogs, and cats is kidney failure. In cases of hyperphosphatemia, limiting consumption of phosphate-rich foods, such as some meats and dairy items and foods with a high phosphate-to-protein ratio, such as soft drinks, fast food, processed foods, condiments, and other products containing phosphate-salt additives is advised.
Phosphates induce vascular calcification, and a high concentration of phosphates in blood was found to be a predictor of cardiovascular events.
Production
Geological occurrence
Phosphates are the naturally occurring form of the element phosphorus, found in many phosphate minerals. In mineralogy and geology, phosphate refers to a rock or ore containing phosphate ions. Inorganic phosphates are mined to obtain phosphorus for use in agriculture and industry.
The largest global producer and exporter of phosphates is Morocco. Within North America, the largest deposits lie in the Bone Valley region of central Florida, the Soda Springs region of southeastern Idaho, and the coast of North Carolina. Smaller deposits are located in Montana, Tennessee, Georgia, and South Carolina. The small island nation of Nauru and its neighbor Banaba Island, which used to have massive phosphate deposits of the best quality, have been mined excessively. Rock phosphate can also be found in Egypt, Israel, Palestine, Western Sahara, Navassa Island, Tunisia, Togo, and Jordan, countries that have large phosphate-mining industries.
Phosphorite mines are primarily found in:
- North America: Main article: Phosphate mining in the United States United States, especially Florida, with lesser deposits in North Carolina, Idaho, and Tennessee
- Africa: Morocco, Algeria, Egypt, Niger, Senegal, Togo, Tunisia, Mauritania
- Middle East: Saudi Arabia, Jordan, Israel, Syria, Iran and Iraq, at the town of Akashat, near the Jordanian border.
- Central Asia: Kazakhstan
- Oceania: Australia, Makatea, Nauru, and Banaba Island
In 2007, at the current rate of consumption, the supply of phosphorus was estimated to run out in 345 years. However, some scientists thought that a "peak phosphorus" would occur in 30 years and Dana Cordell from Institute for Sustainable Futures said that at "current rates, reserves will be depleted in the next 50 to 100 years". Reserves refer to the amount assumed recoverable at current market prices. In 2012 the USGS estimated world reserves at 71 billion tons, while 0.19 billion tons were mined globally in 2011. Phosphorus comprises 0.1% by mass of the average rock (while, for perspective, its typical concentration in vegetation is 0.03% to 0.2%), and consequently there are quadrillions of tons of phosphorus in Earth's 3×10-ton crust, albeit at predominantly lower concentration than the deposits counted as reserves, which are inventoried and cheaper to extract. If it is assumed that the phosphate minerals in phosphate rock are mainly hydroxyapatite and fluoroapatite, phosphate minerals contain roughly 18.5% phosphorus by weight. If phosphate rock contains around 20% of these minerals, the average phosphate rock has roughly 3.7% phosphorus by weight.
Some phosphate rock deposits, such as Mulberry in Florida, are notable for their inclusion of significant quantities of radioactive uranium isotopes. This is a concern because radioactivity can be released into surface waters from application of the resulting phosphate fertilizer.
In December 2012, Cominco Resources announced an updated JORC compliant resource of their Hinda project in Congo-Brazzaville of 531 million tons, making it the largest measured and indicated phosphate deposit in the world.
Around 2018, Norway discovered phosphate deposits almost equal to those in the rest of Earth combined.
In July 2022 China announced quotas on phosphate exportation.
The largest importers in millions of metric tons of phosphate are Brazil 3.2, India 2.9 and the USA 1.6.
Mining
The three principal phosphate producer countries (China, Morocco and the United States) account for about 70% of world production.
Country | Production (millions kg) |
Share of global production (%) |
Reserves (millions kg) |
---|---|---|---|
Algeria | 1,300 | 0.54 | 2,200,000 |
Australia | 2,700 | 1.17 | 1,100,000 |
Brazil | 4,700 | 3.00 | 1,600,000 |
China | 95,000 | 44.83 | 3,200,000 |
Egypt | 5,000 | 2.47 | 2,800,000 |
Finland | 995 | - | 1,000,000 |
India | 1,480 | 0.49 | 46,000 |
Iraq | 200 | 0.09 | 430,000 |
Israel | 2,810 | 1.48 | 57,000 |
Jordan | 9,220 | 3.36 | 800,000 |
Kazakhstan | 1,500 | 0.72 | 260,000 |
Mexico | 558 | 0.76 | 30,000 |
Morocco and Western Sahara | 35,500 | 13.45 | 50,000,000 |
Peru | 4,000 | 1.79 | 210,000 |
Russia | 13,100 | 5.60 | 600,000 |
Saudi Arabia | 6,500 | 1.48 | 1,400,000 |
Senegal | 3,420 | 0.45 | 50,000 |
South Africa | 2,100 | 0.99 | 1,400,000 |
Syria | 2,000 | 0.34 | 1,800,000 |
Togo | 800 | 0.45 | 30,000 |
Tunisia | 4,110 | 1.79 | 100,000 |
Uzbekistan | 900 | - | 100,000 |
United States | 23,300 | 12.37 | 1,000,000 |
Vietnam | 4,650 | 1.21 | 30,000 |
Other countries | 1,140 | 1.17 | 840,000 |
Total | 227,000 | 100 | 71,000,000 |
Ecology
In ecological terms, because of its important role in biological systems, phosphate is a highly sought after resource. Once used, it is often a limiting nutrient in environments, and its availability may govern the rate of growth of organisms. This is generally true of freshwater environments, whereas nitrogen is more often the limiting nutrient in marine (seawater) environments. Addition of high levels of phosphate to environments and to micro-environments in which it is typically rare can have significant ecological consequences. For example, blooms in the populations of some organisms at the expense of others, and the collapse of populations deprived of resources such as oxygen (see eutrophication) can occur. In the context of pollution, phosphates are one component of total dissolved solids, a major indicator of water quality, but not all phosphorus is in a molecular form that algae can break down and consume.
Calcium hydroxyapatite and calcite precipitates can be found around bacteria in alluvial topsoil. As clay minerals promote biomineralization, the presence of bacteria and clay minerals resulted in calcium hydroxyapatite and calcite precipitates.
Phosphate deposits can contain significant amounts of naturally occurring heavy metals. Mining operations processing phosphate rock can leave tailings piles containing elevated levels of cadmium, lead, nickel, copper, chromium, and uranium. Unless carefully managed, these waste products can leach heavy metals into groundwater or nearby estuaries. Uptake of these substances by plants and marine life can lead to concentration of toxic heavy metals in food products.
See also
- Diammonium phosphate - (NH4)2HPO4
- Disodium phosphate – Na2HPO4
- Fertilizer
- Hypophosphite – H
2(PO
2) - Metaphosphate – (PO
3)
n - Monosodium phosphate – NaH2PO4
- Organophosphorus compounds
- Ouled Abdoun Basin
- Phosphate – OP(OR)3, such as triphenyl phosphate
- Phosphate conversion coating
- Phosphate soda, a soda fountain beverage
- Phosphinate – OP(OR)R2
- Phosphine – PR3
- Phosphine oxide – OPR3
- Phosphinite – P(OR)R2
- Phosphite – P(OR)3
- Phosphogypsum
- Phosphonate – OP(OR)2R
- Phosphonite – P(OR)2R
- Phosphorylation
- Polyphosphate – (HPO
3)
n - Pyrophosphate – (P
2O
7) - Sodium tripolyphosphate – Na5P3O10
References
- "Phosphates – PubChem Public Chemical Database". The PubChem Project. USA: National Center of Biotechnology Information.
- ^ "Phosphate Primer". Florida Industrial and Phosphate Research Institute. Florida Polytechnic University. Archived from the original on 29 August 2017. Retrieved 30 March 2018.
- Campbell, Neil A.; Reece, Jane B. (2005). Biology (Seventh ed.). San Francisco, California: Benjamin Cummings. p. 65. ISBN 0-8053-7171-0.
- Kipton J. Powell, Paul L. Brown, Robert H. Byrne, Tamás Gajda, Glenn Hefter, Staffan Sjöberg, Hans Wanner (2005): "Chemical speciation of environmentally significant heavy metals with inorganic ligands. Part 1: The Hg
, Cl, OH, CO
3, SO
4, and PO
4 aqueous systems". Pure and Applied Chemistry, volume 77, issue 4, pages 739–800. doi:10.1351/pac200577040739 - Jastrzab Renata, Nowak Martyna, Zabiszak Michał, Odani Akira, Kaczmarek Małgorzata T. Significance and properties of the complex formation of phosphate and polyphosphate groups in particles present in living cells 10.1016/j.ccr.2021.213810 Coordination Chemistry Reviews Volume 435, 15 May 2021, 213810
- ^ "Phosphate Supplement (Oral Route, Parenteral Route) Description and Brand Names - Mayo Clinic". www.mayoclinic.org. Retrieved 2020-11-20.
- Renal Dietitian Team, Reducing phosphate in your diet, Oxford University Hospitals NHS Foundation Trust, 2022 review
- Ritz, Eberhard; Hahn, Kai; Ketteler, Markus; Kuhlmann, Martin K.; Mann, Johannes (January 2012). "Phosphate additives in food--a health risk". Deutsches Ärzteblatt International. 109 (4): 49–55. doi:10.3238/arztebl.2012.0049. ISSN 1866-0452. PMC 3278747. PMID 22334826.
- Reilly, Michael (May 26, 2007). "How Long Will it Last?". New Scientist. 194 (2605): 38–9. Bibcode:2007NewSc.194...38R. doi:10.1016/S0262-4079(07)61508-5.
- Leo Lewis (2008-06-23). "Scientists warn of lack of vital phosphorus as biofuels raise demand". The Times. Archived from the original on September 5, 2008.
- U.S. Geological Survey Phosphate Rock
- U.S. Geological Survey "Phosphorus Soil Samples" (PDF).
- Floor Anthoni. "Abundance of Elements". Seafriends.org.nz. Retrieved 2013-01-10.
- American Geophysical Union, Fall Meeting 2007, abstract #V33A-1161. Mass and Composition of the Continental Crust
- Central Florida Phosphate Industry: Environmental Impact Statement. Vol. 2. United States. Environmental Protection Agency. 1979.
- C. Michael Hogan (2010). "Water pollution". In Mark McGinley and C. Cleveland (Washington, DC.: National Council for Science and the Environment) (ed.). Encyclopedia of Earth. Archived from the original on 2010-09-16.
- "Updated Hinda Resource Announcement: Now world's largest phosphate deposit (04/12/2012)". Cominco Resources. Archived from the original on 2016-10-05. Retrieved 2013-05-03.
- Bushuev, Mikhail (26 January 2021). "EU pins hope on Norway's raw materials". Retrieved 2 July 2023.
- "'Great news': EU hails discovery of massive phosphate rock deposit in Norway". 29 June 2023.
- "China issues phosphate quotas to rein in fertiliser exports - analysts". Reuters. 15 July 2022.
- "Top countries for Phosphate Fertilizer Imports".
- "PHOSPHATE ROCK, usgs" (PDF).
- Hochanadel, Dave (December 10, 2010). "Limited amount of total phosphorus actually feeds algae, study finds". Lake Scientist. Retrieved June 10, 2012.
ioavailable phosphorus – phosphorus that can be utilized by plants and bacteria – is only a fraction of the total, according to Michael Brett, a UW engineering professor ...
- ^ Schmittner KE, Giresse P (1999). "Micro-environmental controls on biomineralization: superficial processes of apatite and calcite precipitation in Quaternary soils, Roussillon, France". Sedimentology. 46 (3): 463–76. Bibcode:1999Sedim..46..463S. doi:10.1046/j.1365-3091.1999.00224.x. S2CID 140680495.
- Gnandi, K.; Tchangbedjil, G.; Killil, K.; Babal, G.; Abbel, E. (March 2006). "The Impact of Phosphate Mine Tailings on the Bioaccumulation of Heavy Metals in Marine Fish and Crustaceans from the Coastal Zone of Togo". Mine Water and the Environment. 25 (1): 56–62. Bibcode:2006MWE....25...56G. doi:10.1007/s10230-006-0108-4. S2CID 129497587.
External links
- US Minerals Databrowser provides data graphics covering consumption, production, imports, exports and price for phosphate and 86 other minerals
- Phosphate: analyte monograph – The Association for Clinical Biochemistry and Laboratory Medicine
- "Phosphates" . Encyclopædia Britannica. Vol. 21 (11th ed.). 1911. pp. 474–476.
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Crystalline | |
Cryptocrystalline | |
Amorphous | |
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