Lithium phosphate monobasic - ≥99% , CAS No.13453-80-0

CAS: 13453-80-0 Cat. No.: L103191 Fórmula: LiH2PO4 Peso molecular: 103.93 Número CE: 236-633-6
Disponível para encomenda
GRADE & PURITY ≥99%
Synonyms
Lithium phosphate monobasic | Lithium dihydrogenphosphate
Storage
Room temperature,Desiccated,Cool
Shipped In
Normal
★
Size
Alemanha (EU)
USA*
Price
Qty
25g
L103191-25g
—
4 Em stock

15,53€

23,34€
Gravar 7,81 € (33.46%)
100g
L103191-100g
—
9 Em stock

24,21€

36,36€
Gravar 12,15 € (33.41%)
250g
L103191-250g
—
6 Em stock

34,62€

51,98€
Gravar 17,35 € (33.39%)
500g
L103191-500g
—
3 Em stock

44,17€

66,73€
Gravar 22,56 € (33.81%)
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.

🌡

Storage & shipping

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

📋

Quality documents

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

📚

Literature proof

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

Visão geral

Lithium phosphate monobasic is a class of electrolytic materials that can be used in the fabrication of lithium-ion batteries. Lithium-ion batteries consist of anode, cathode, and electrolyte with a charge-discharge cycle. These materials enable the formation of greener and sustainable batteries for electrical energy storage.

Specifications

Sinónimos
Lithium phosphate monobasic | Lithium dihydrogenphosphate
Especificações e pureza
≥99%
Condições de armazenamento de armazenamento
Room temperature,Desiccated,Cool
Enviado em
Normal
Pureza
≥99%
Nomes e identificadores
Pubchem Sid488200442
Pubchem Sid Urlhttps://pubchem.ncbi.nlm.nih.gov/substance/488200442
Sorrisos canónicos[Li+].OP(=O)(O)[O-]
IUPAC Namelithium;dihydrogen phosphate
InChIKeySNKMVYBWZDHJHE-UHFFFAOYSA-M
INCHI1S/Li.H3O4P/c;1-5(2,3)4/h;(H3,1,2,3,4)/q+1;/p-1
SMILES isoméricas [Li+].OP(=O)(O)[O-]
Peso molecular 103.93
Reaxy-Rn 11461040
Reaxys-RN_link_address https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=11461040&ln=

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
ClasseAlkali metal oxoanionic compounds
SubclassAlkali metal phosphates
Intermediate Tree Nodes Not available
Direct ParentAlkali metal phosphates
Alternative Parents Inorganic oxides  Inorganic lithium salts  
Molecular FrameworkNot available
Substituents Alkali metal phosphate - Inorganic lithium salt - Inorganic oxide - Inorganic salt
DescriçãoThis compound belongs to the class of inorganic compounds known as alkali metal phosphates. These are inorganic compounds in which the largest oxoanion is phosphate, and in which the heaviest atom not in an oxoanion is an alkali metal.
External Descriptors Not available
Estrutura 3D
Modelo de Estrutura Química Interativa





Certificados(CoA,COO,BSE/TSE e Mapa de Análise)
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.

50 results found

Lot NumberCertificate TypeDataItem
K2217759Certificate of AnalysisSep 04, 2026 L103191
F2623249Certificate of AnalysisJun 16, 2026 L103191
F2623215Certificate of AnalysisJun 16, 2026 L103191
E2619479Certificate of AnalysisMay 11, 2026 L103191
E2619478Certificate of AnalysisMay 11, 2026 L103191
E2619477Certificate of AnalysisMay 11, 2026 L103191
B2624459Certificate of AnalysisFeb 09, 2026 L103191
B2624460Certificate of AnalysisFeb 09, 2026 L103191
D2623732Certificate of AnalysisFeb 09, 2026 L103191
K2527574Certificate of AnalysisNov 17, 2025 L103191
K2527560Certificate of AnalysisNov 17, 2025 L103191
K2527559Certificate of AnalysisNov 17, 2025 L103191
K2527467Certificate of AnalysisNov 17, 2025 L103191
A2607499Certificate of AnalysisNov 17, 2025 L103191
A2607495Certificate of AnalysisNov 17, 2025 L103191
A2607501Certificate of AnalysisNov 17, 2025 L103191
A2607502Certificate of AnalysisNov 17, 2025 L103191
E2514416Certificate of AnalysisApr 21, 2025 L103191
E2514417Certificate of AnalysisApr 21, 2025 L103191
E2514385Certificate of AnalysisApr 21, 2025 L103191
E2514384Certificate of AnalysisApr 21, 2025 L103191
H2409643Certificate of AnalysisAug 01, 2024 L103191
H2409644Certificate of AnalysisAug 01, 2024 L103191
H2409642Certificate of AnalysisAug 01, 2024 L103191
A2507123Certificate of AnalysisAug 01, 2024 L103191
H2409627Certificate of AnalysisAug 01, 2024 L103191
G2412288Certificate of AnalysisApr 26, 2024 L103191
A2425370Certificate of AnalysisJan 13, 2024 L103191
A2425376Certificate of AnalysisJan 13, 2024 L103191
A2425372Certificate of AnalysisJan 13, 2024 L103191
A2425371Certificate of AnalysisJan 13, 2024 L103191
I2311616Certificate of AnalysisMay 09, 2023 L103191
I2311615Certificate of AnalysisMay 09, 2023 L103191
I2311614Certificate of AnalysisMay 09, 2023 L103191
C2325911Certificate of AnalysisMar 13, 2023 L103191
C2325916Certificate of AnalysisMar 13, 2023 L103191
C2325918Certificate of AnalysisMar 13, 2023 L103191
C2325919Certificate of AnalysisMar 13, 2023 L103191
C2325920Certificate of AnalysisMar 13, 2023 L103191
C2325923Certificate of AnalysisMar 13, 2023 L103191
C2325910Certificate of AnalysisMar 13, 2023 L103191
C2325738Certificate of AnalysisMar 13, 2023 L103191
K2217774Certificate of AnalysisOct 09, 2022 L103191
K2217842Certificate of AnalysisOct 09, 2022 L103191
K2217848Certificate of AnalysisOct 09, 2022 L103191
K2217849Certificate of AnalysisOct 09, 2022 L103191
F2208031Certificate of AnalysisMar 20, 2022 L103191
F2208032Certificate of AnalysisMar 20, 2022 L103191
F2208033Certificate of AnalysisMar 20, 2022 L103191
F2208037Certificate of AnalysisMar 20, 2022 L103191

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Propriedades químicas e físicas
SolubilidadeSlightly soluble in water.
Ponto de fusão (°C)>100℃
Peso molecular104.000 g/mol
XLogP3
Hydrogen Bond Donor Count2
Hydrogen Bond Acceptor Count4
Rotatable Bond Count0
Exact Mass103.985 Da
Monoisotopic Mass103.985 Da
Topological Polar Surface Area80.600 Ų
Heavy Atom Count6
Formal Charge0
Complexity61.900
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
Citations of This Product
Referências
1. Kai Xia, Rui Liang, Yi Luo, Anqiao Zheng, Guodong Jiang, Mingxia Fan, Jian Xiong, Songdong Yuan.  (2023)  Solid-State Preparation and Electrochemical Properties of Mg2+-doped LiFe0.7Mn0.3PO4/C as Cathode Material for Lithium-Ion Batteries.  International Journal of Electrochemical Science,      [PMID:] [10.20964/2022.12.72]
2. Tu Lan, Xiaolong Guo, De Li, Yong Chen.  (2021)  Preparation of LiFePO4 Powders by Ultrasonic Spray Drying Method and Their Memory Effect.  Materials,  14  (12): (3193).  [PMID:34200534] [10.3390/ma14123193]
3. Guodong Du, Yakun Xi, Xiaohui Tian, Yanbin Zhu, Yingke Zhou, Chengji Deng, Hongxi Zhu, Angulakshmi Natarajan.  (2019)  One-step hydrothermal synthesis of 3D porous microspherical LiFePO4/graphene aerogel composite for lithium-ion batteries.  CERAMICS INTERNATIONAL,      [PMID:] [10.1016/j.ceramint.2019.06.035]
4. Guodong Du, Yingke Zhou, Xiaohui Tian, Guan Wu, Yakun Xi, Shengyu Zhao.  (2018)  High-performance 3D directional porous LiFePO4/C materials synthesized by freeze casting.  APPLIED SURFACE SCIENCE,      [PMID:] [10.1016/j.apsusc.2018.05.142]
5. Xiaofeng Tu, Yingke Zhou, Yijie Song.  (2016)  Freeze-drying synthesis of three-dimensional porous LiFePO4 modified with well-dispersed nitrogen-doped carbon nanotubes for high-performance lithium-ion batteries.  APPLIED SURFACE SCIENCE,      [PMID:] [10.1016/j.apsusc.2016.12.220]
6. Han Xu, Jun Zong, Fei Ding, Zhi-wei Lu, Wei Li, Xing-jiang Liu.  (2016)  Effects of Fe2+ ion doping on LiMnPO4 nanomaterial for lithium ion batteries.  RSC Advances,  6  (32): (27164-27169).  [PMID:] [10.1039/C6RA02977A]
7. Jugong Zheng, Cancan Qin, Tongfu Wu, Shuangfei Xie, Liang Ni, Muyang Peng, Yuefeng Tang, Yanfeng Chen.  (2015)  High-performance LiMnPO4/C nanoplates synthesized by negative pressure immersion and a solid state reaction using nanoporous Mn2O3 precursors.  Journal of Materials Chemistry A,  3  (29): (15299-15306).  [PMID:] [10.1039/C5TA02431E]
8. Jugong Zheng, Liang Ni, Yanwen Lu, Cancan Qin, Panxing Liu, Tongfu Wu, Yuefeng Tang, Yanfeng Chen.  (2015)  High-performance, nanostructure LiMnPO4/C composites synthesized via one-step solid state reaction.  JOURNAL OF POWER SOURCES,      [PMID:] [10.1016/j.jpowsour.2015.02.048]
9. Xue Zhou, Ye Xie, Yuanfu Deng, Xusong Qin, Guohua Chen.  (2014)  The enhanced rate performance of LiFe0.5Mn0.5PO4/C cathode material via synergistic strategies of surfactant-assisted solid state method and carbon coating.  Journal of Materials Chemistry A,  3  (3): (996-1004).  [PMID:] [10.1039/C4TA05431H]
10. Xinglin Tang, Jiaqi Huang, Fangzhou Zhao, Yuqi Zhou, Yulin Xu, Ye Tao, Wanglai Cen, Yangjie Dai, Yongzhi Zhang.  (2025)  A 3D continuous mesoporous carbon framework enhances electronic/ionic kinetics of LiMn0.6Fe0.4PO4 cathode for high-performance lithium-ion batteries.  CARBON,      [PMID:] [10.1016/j.carbon.2025.120257]
11. Wei Lin, Yulu Wu, Xinyu Hu, Peng Yang, Hong Wen, Tianfu Zhao, Lianbang Wang, Chaoqi Shen.  (2025)  Achieving Fast Mn Redox Kinetics with Solvothermal Synthesized (010) Facet Preferential LiMn0.5Fe0.5PO4 Nanoplates for Li-Ion Batteries.  Advanced Sustainable Systems,      [PMID:] [10.1002/adsu.202400814]
12. Jinping Mu, Xiaohui Li, Rui He, Lijing Sun, Xue Bai, Lihui Zhang, Peng Liu, Zhenfa Liu, Jing Gao, Aijia Wei.  (2024)  Effect of lithium-containing inorganic phosphate additives in stabilization of carbonate-based electrolyte for 5 V LiNi0.5Mn1.5O4-based lithium-ion batteries.  Journal of Energy Storage,      [PMID:] [10.1016/j.est.2024.112538]
13. Qi You, Xuan Zhou, Chengxiang Yang, Mu Liu, Wei Liu, Jinkai Li, Xuchuan Jiang.  (2024)  Preparation and Luminescence Property Study of Red-Emitting Na3.6Y1.8(PO4)3:Eu3+,Li+/K+ Phosphors with Excellent Thermal Stability for Light-Conversion Application.  Nanomaterials,  14  (21): (1721).  [PMID:39513801] [10.3390/nano14211721]
14. Hui Zhuang, Jie Wang.  (2024)  Preparation of lithium ferromanganese phosphate by non-stoichiometric strategy.  International Journal of Electrochemical Science,      [PMID:] [10.1016/j.ijoes.2024.100636]
15. Yuqing Li, Weixing Xiong, Qunting Qu, Jie Shao, Ying Yan, Ru Wang, Linze Lv, Honghe Zheng.  (2025)  pH-Dependent Phosphates Conformal Coating Enabling 5.0 V Graphite Cathodes Over 10,000 Cycles via Reinforced Mechanical Strength and Optimized Interphase.  ADVANCED MATERIALS,      [PMID:41085066] [10.1002/adma.202513729]
16. Peng Xu, Haiwei Wu, Haiwen Li, Hanbin Liu, Zhijian Li.  (2025)  Synergistic effect of ball milling time and Mn-Fe ratio on the electrochemical performance of paper-based LiMn1-XFeXPO4/C cathodes for Lithium-ion batteries.  SOLID STATE IONICS,      [PMID:] [10.1016/j.ssi.2025.116898]
17. Fan Xiao, Lehan Zhu, Zhangjun Wu, Haotian Zhu, Juan Xia, Jiannan Zhu, Zeheng Yang, Weixin Zhang.  (2025)  Upcycling the Lithium Extraction By-products from Spent Lithium-ion Batteries into High-voltage Polyanionic LiMnxFe1-xPO4.  GREEN CHEMISTRY,      [PMID:] [10.1039/D5GC03642A]
18. Wenjing Chen, Rong Li, Fangxiang Song, Xiaozhi Chen, Qianlin Chen.  (2026)  Optimisation of LiFe1−xMnxPO4 cathode material via a defect engineering strategy controlled by lattice mismatch.  Journal of Energy Chemistry,      [PMID:] [10.1016/j.jechem.2026.02.021]
19. Jian Zhi, Yunfeng Luo, Chenyi Liao, Zhongyi Liu, Mei Han, Kaihang Yue, Lei Zhang, Guohui Li, P Chen.  (2026)  Methanesulfonate in Phosphate Electrolyte Superstructure Enables Ampere-Hour Practical Aqueous Batteries.  Research,      [PMID:41756720] [10.34133/research.1170]
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