Ferric phosphate - ≥99% , CAS No.10045-86-0

CAS: 10045-86-0 Cat. No.: F188971 Molecular Weight: 150.82 EC Number: 233-149-7
AVAILABLE TO ORDER
GRADE & PURITY ≥99%
Synonyms
Iron(III) phosphate | Ferric Orthophosphate | Iron Orthophosphate
Storage
Room temperature,Desiccated,Cool
Shipped In
Normal
 ·  off list, applied to all prices below.
Size
Status
Price
Qty
25g
F188971-25g
≥10
$9.90
500g
F188971-500g
4
$66.90
100g
F188971-100g
3
$19.90
250g
F188971-250g
4
$39.90
Enter a quantity for the sizes you want to add.
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Why this grade

≥99% for sensitive chromatographic and analytical workflows requiring minimal baseline interference.

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Storage & shipping

Room temperature,Desiccated,Cool Ships Normal Check lot-specific COA for exact specifications.

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Quality documents

SDS, COA, datasheet, and spec sheet available for download. Lot-specific COA accessible via lot number lookup.

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Literature proof

Cited in 19 peer-reviewed publications across chromatography, organic synthesis, and cross-coupling reactions.

Specifications

Synonyms
Iron(III) phosphate | Ferric Orthophosphate | Iron Orthophosphate
Specifications & Purity
≥99%
Storage
Room temperature, Desiccated, Cool
Shipped In
Normal
Purity
≥99%
Names and Identifiers
Pubchem Sid488182930
Pubchem Sid Urlhttps://pubchem.ncbi.nlm.nih.gov/substance/488182930
Canonical Smiles[O-]P(=O)([O-])[O-].[Fe+3]
IUPAC Nameiron(3+);phosphate
InChIKeyWBJZTOZJJYAKHQ-UHFFFAOYSA-K
INCHI1S/Fe.H3O4P/c;1-5(2,3)4/h;(H3,1,2,3,4)/q+3;/p-3
Isomeric SMILES [O-]P(=O)([O-])[O-].[Fe+3]
Molecular Weight 150.82

Documentation

📋 Safety Data Sheet (SDS)

Comprehensive hazard, handling, storage, and regulatory compliance document.

Download SDS →

✅ Certificate of Analysis (COA)

Lot-specific quality data. Enter your lot number to retrieve the exact COA.

Look up COA →

📊 Datasheet

Quick-reference summary of product specifications and applications.

View datasheet →

🔬 Specification Sheet

Full quality attributes and acceptance criteria for this grade.

View spec sheet →

Advanced Data

Taxonomic Classification

Taxonomy Tree

KingdomInorganic compounds
SuperclassMixed metal/non-metal compounds
ClassTransition metal oxoanionic compounds
SubclassTransition metal phosphates
Intermediate Tree Nodes Not available
Direct ParentTransition metal phosphates
Alternative Parents Inorganic salts  Inorganic oxides  
Molecular FrameworkNot available
Substituents Transition metal phosphate - Inorganic oxide - Inorganic salt
DescriptionThis compound belongs to the class of inorganic compounds known as transition metal phosphates. These are inorganic compounds in which the largest oxoanion is phosphate, and in which the heaviest atom not in an oxoanion is a transition metal.
External Descriptors Not available
3D Structure
Interactive Chemical Structure Model





Certificates(CoA,COO,BSE/TSE and Analysis Chart)
C of A & Other Certificates(BSE/TSE, COO):
Analytical Chart:

Find and download the COA for your product by matching the lot number on the packaging.

68 results found

Lot NumberCertificate TypeDateItem
F2622167Certificate of AnalysisJun 09, 2026 F188971
F2626413Certificate of AnalysisJun 09, 2026 F188971
F2626416Certificate of AnalysisJun 09, 2026 F188971
C2324785Certificate of AnalysisJan 19, 2026 F188971
C2324784Certificate of AnalysisJan 19, 2026 F188971
C2324773Certificate of AnalysisJan 19, 2026 F188971
B2303837Certificate of AnalysisOct 30, 2025 F188971
L2213393Certificate of AnalysisSep 17, 2025 F188971
H2528279Certificate of AnalysisAug 20, 2025 F188971
H2528160Certificate of AnalysisAug 20, 2025 F188971
H2528278Certificate of AnalysisAug 20, 2025 F188971
L2508471Certificate of AnalysisAug 20, 2025 F188971
H2528280Certificate of AnalysisAug 20, 2025 F188971
L2508461Certificate of AnalysisAug 20, 2025 F188971
L2508462Certificate of AnalysisAug 20, 2025 F188971
L2508469Certificate of AnalysisAug 20, 2025 F188971
L2508470Certificate of AnalysisAug 20, 2025 F188971
E2514349Certificate of AnalysisApr 16, 2025 F188971
E2514348Certificate of AnalysisApr 16, 2025 F188971
E2514344Certificate of AnalysisApr 16, 2025 F188971
E2514323Certificate of AnalysisApr 16, 2025 F188971
E2514322Certificate of AnalysisApr 16, 2025 F188971
L2410428Certificate of AnalysisNov 28, 2024 F188971
L2410427Certificate of AnalysisNov 28, 2024 F188971
L2410426Certificate of AnalysisNov 28, 2024 F188971
L2410425Certificate of AnalysisNov 28, 2024 F188971
L2410424Certificate of AnalysisNov 28, 2024 F188971
I2429135Certificate of AnalysisSep 11, 2024 F188971
I2429136Certificate of AnalysisSep 11, 2024 F188971
I2429140Certificate of AnalysisSep 11, 2024 F188971
I2429134Certificate of AnalysisSep 11, 2024 F188971
E2430648Certificate of AnalysisMay 20, 2024 F188971
E2430647Certificate of AnalysisMay 20, 2024 F188971
E2430646Certificate of AnalysisMay 20, 2024 F188971
E2430645Certificate of AnalysisMay 20, 2024 F188971
E2430644Certificate of AnalysisMay 20, 2024 F188971
D2407281Certificate of AnalysisMar 11, 2024 F188971
D2407279Certificate of AnalysisMar 11, 2024 F188971
D2407278Certificate of AnalysisMar 11, 2024 F188971
C2412245Certificate of AnalysisFeb 26, 2024 F188971
C2412243Certificate of AnalysisFeb 26, 2024 F188971
C2412247Certificate of AnalysisFeb 26, 2024 F188971
C2412244Certificate of AnalysisFeb 26, 2024 F188971
C2412246Certificate of AnalysisFeb 26, 2024 F188971
C2412248Certificate of AnalysisFeb 26, 2024 F188971
A2417335Certificate of AnalysisDec 29, 2023 F188971
A2417334Certificate of AnalysisDec 29, 2023 F188971
A2417333Certificate of AnalysisDec 29, 2023 F188971
A2417332Certificate of AnalysisDec 29, 2023 F188971
I2311523Certificate of AnalysisAug 28, 2023 F188971
I2311520Certificate of AnalysisAug 28, 2023 F188971
I2311521Certificate of AnalysisAug 28, 2023 F188971
I2311522Certificate of AnalysisAug 28, 2023 F188971
I2311539Certificate of AnalysisAug 28, 2023 F188971
C2324767Certificate of AnalysisMar 11, 2023 F188971
C2324769Certificate of AnalysisMar 11, 2023 F188971
C2324772Certificate of AnalysisMar 11, 2023 F188971
C2324780Certificate of AnalysisMar 11, 2023 F188971
C2324714Certificate of AnalysisMar 11, 2023 F188971
L2213368Certificate of AnalysisNov 26, 2022 F188971
L2213376Certificate of AnalysisNov 26, 2022 F188971
L2213385Certificate of AnalysisNov 26, 2022 F188971
L2213395Certificate of AnalysisNov 26, 2022 F188971
H2209566Certificate of AnalysisJul 21, 2022 F188971
H2209564Certificate of AnalysisJul 21, 2022 F188971
H2209561Certificate of AnalysisJul 21, 2022 F188971
H2209560Certificate of AnalysisJul 21, 2022 F188971
H2209368Certificate of AnalysisJul 21, 2022 F188971

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Chemical and Physical Properties
SolubilityWater solubility 0.083 g/l (20 ℃)
Melt Point(°C)449.85℃
Molecular Weight150.820 g/mol
XLogP3
Hydrogen Bond Donor Count0
Hydrogen Bond Acceptor Count4
Rotatable Bond Count0
Exact Mass150.888 Da
Monoisotopic Mass150.888 Da
Topological Polar Surface Area86.300 Ų
Heavy Atom Count6
Formal Charge0
Complexity36.800
Isotope Atom Count0
Defined Atom Stereocenter Count0
Undefined Atom Stereocenter Count0
Defined Bond Stereocenter Count0
Undefined Bond Stereocenter Count0
The total count of all stereochemical bonds0
Covalently-Bonded Unit Count2
Documents & Articles
Citations of This Product
References
1. Jiafei Gu, Xiaoling Liu, Ping Cui, Xiaosu Yi.  (2023)  Multifunctional bioactive glasses with spontaneous degradation for simultaneous osteosarcoma therapy and bone regeneration.  Biomaterials Advances,      [PMID:37722164] [10.1016/j.bioadv.2023.213626]
2. Yafei Cheng, Zhijian Shi, Yan Shi, Yalei Zhang, Shicheng Zhang, Gang Luo.  (2023)  Biochar promoted microbial iron reduction in competition with methanogenesis in anaerobic digestion.  BIORESOURCE TECHNOLOGY,      [PMID:37506931] [10.1016/j.biortech.2023.129561]
3. Haisheng Wei, Zhaohua Gao, Liru Cao, Kairui Li, Xiaorui Yan, Tiantian Liu, Mingyuan Zhu, Fei Huang, Xu Fang, Jian Lin.  (2022)  FePO4 supported Rh subnano clusters with dual active sites for efficient hydrogenation of quinoline under mild conditions.  Nanoscale,  15  (3): (1422-1430).  [PMID:36594603] [10.1039/D2NR05518J]
4. Dong Haijiao, Du Wei, Dong Jian, Che Renchao, Kong Fei, Cheng Wenlong, Ma Ming, Gu Ning, Zhang Yu.  (2022)  Depletable peroxidase-like activity of Fe3O4 nanozymes accompanied with separate migration of electrons and iron ions.  Nature Communications,  13  (1): (1-11).  [PMID:36097172] [10.1038/s41467-022-33098-y]
5. Kexin Lu, Qian Ping, Qinyuan Lu, Yongmei Li.  (2022)  Understanding roles of humic substance and protein on iron phosphate transformation during anaerobic fermentation of waste activated sludge.  BIORESOURCE TECHNOLOGY,      [PMID:35489570] [10.1016/j.biortech.2022.127242]
6. Zongming Sui, Jie Yin, Jianguo Huang, Ling Yuan.  (2021)  Phosphorus mobilization and improvement of crop agronomic performances by a new white-rot fungus Ceriporia lacerata HG2011.  JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE,  102  (4): (1640-1650).  [PMID:34453347] [10.1002/jsfa.11501]
7. Zhipeng Zhang, Qian Ping, Dan Gao, Peter A. Vanrolleghem, Yongmei Li.  (2020)  Effects of ferric-phosphate forms on phosphorus release and the performance of anaerobic fermentation of waste activated sludge.  BIORESOURCE TECHNOLOGY,      [PMID:33421830] [10.1016/j.biortech.2020.124622]
8. Guoqing Dai, Hao Shi, Murray B. McBride, Haojie Fu, Zheng Li, Xinlei Wang, Shu Yang, Lei Wang, Fayuan Wang, Xinxin Li.  (2024)  Biogeochemical processes in heterogeneous soil-Solanum nigrum L. system control lead partitioning: Roles of strengite and oxalated zero-valent iron nanoparticle.  Journal of Cleaner Production,      [PMID:] [10.1016/j.jclepro.2024.141993]
9. Minghao Jin, Huan Liu, Jin Chen, Hong Yao.  (2025)  Direct recovery of high-purity phosphorus product from leachates of sludge incineration ash through thermodynamically spontaneous method.  SEPARATION AND PURIFICATION TECHNOLOGY,      [PMID:] [10.1016/j.seppur.2025.132558]
10. Jiaqi Huang, Xinglin Tang, Yuqi Zhou, Ting Wang, Fangzhou Zhao, Weijian Wang, Yan Meng, Wanglai Cen, Yongzhi Zhang.  (2025)  Enhanced cycling stability and suppressed voltage decay of LiMn0.8Fe0.2PO4/C by Zn-gradient doping.  Journal of Materials Chemistry A,      [PMID:] [10.1039/D5TA00706B]
11. Weixin Xian, Wenyu Wang, Juntao Guo, Jinjun Li, Jing Xu, Feng Wu.  (2024)  FePO4 activated sulfite autoxidation for simultaneous pollutant degradation and phosphorus release.  Journal of Cleaner Production,      [PMID:] [10.1016/j.jclepro.2024.141342]
12. Lu Zhong, Yuejia Qin, Zenan Zhou, Lianyun Zhong, Jietian Liang, Shaohui Hu, Qifan Liu, Yanfei Zeng, Shunmin Yi, Hui You, Shengkui Zhong, Dongliang Yan.  (2025)  One-pot formation of N, S-doped carbon coated-LiFePO4 with improved lithium storage performance.  Journal of Energy Storage,      [PMID:] [10.1016/j.est.2025.115434]
13. Zuhong Ji, Yunfei Sun, Xiaodong Guan, Yang Zhou, Junchao Qian, Feng Chen.  (2024)  Revealing the superior rate performance and cycle stability of the La and F Co-doping LiFePO4/C.  VACUUM,      [PMID:] [10.1016/j.vacuum.2024.113452]
14. Gongting Wang, Wenqing Luo, Zedong Teng, Xin Zhao, Yuxin Cheng, Yanzhong Wang, Bin Liu, Mengnan Lu, Min Li.  (2025)  Humic and fulvic acid-mediated dissimilatory iron reduction coupled with phosphate solubilizing bacteria inducing secondary mineral formation for efficient cadmium immobilization.  JOURNAL OF HAZARDOUS MATERIALS,      [PMID:40682880] [10.1016/j.jhazmat.2025.139297]
15. Xiaopeng Fu, Meng Xiao, Meihua Chen, Zhian Zhang, Limin Zheng, Fang Wan, Xiaodong Guo.  (2025)  Constructing a Three-Phase Reaction System for Efficiently Recycling Spent LiFePO4.  ACS Applied Energy Materials,      [PMID:] [10.1021/acsaem.5c00475]
16. Siyu Zhou, Wanni Liu, Dongqi Liu, Xian Shi, Kai Huang, Feng Jiang, Hui Gao, Haian Xia, Ying Guan, Siquan Xu.  (2025)  Promoting 5-hydroxymethylfurfural production from cellulose and wheat straw via sulfonic acid group-grafted SBA-15 mesoporous silica embedded with iron phosphate.  INDUSTRIAL CROPS AND PRODUCTS,      [PMID:] [10.1016/j.indcrop.2025.121425]
17. Danfeng Zhang, Jiaxiu Sun, Zhiqi Ren, Yuhang Wang, Zongsheng Qiu, Jianwen Yang, Yongbin He, Meng Qin, Fei Sun, Lianming Zhang, Bin Huang, Yanwei Li, Shunhua Xiao.  (2025)  Nb Doping Enhancing Structure Stability and High-Temperature Electrochemical Performances of LiFe0.5Mn0.5PO4 Cathode Material in Lithium-Ion Batteries.  ChemSusChem,      [PMID:41090252] [10.1002/cssc.202501321]
18. Liu Jian, Li Jian, Wu Tong, Shen Renpeng, Zhou Haibo, Xiong Lizhi, Zhao Heping, Xiang Yanhong.  (2026)  High-energy grinding activates Mn2+/Mn3+ for synthesizing LiMn0.8Fe0.2PO4 cathode with high-rate performance.  JOURNAL OF MATERIALS SCIENCE,      [PMID:] [10.1007/s10853-026-12498-1]
19. Andong Hu, Bing Li, Shang Yang, Ruili Li, Yuefei Huang, Shungui Zhou, Guangqian Wang.  (2026)  Hydrodynamic Forces as an Overlooked Driver of Phosphorus Mobilization via Piezoelectric Activation.  ENVIRONMENTAL SCIENCE & TECHNOLOGY,      [PMID:] [10.1021/acs.est.5c17156]
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