Determine the necessary mass, volume, or concentration for preparing a solution.
≥97% for sensitive chromatographic and analytical workflows requiring minimal baseline interference.
Protected from light,Room temperature,Desiccated,Cool Ships Normal Check lot-specific COA for exact specifications.
SDS, COA, datasheet, and spec sheet available for download. Lot-specific COA accessible via lot number lookup.
Cited in 96 peer-reviewed publications across chromatography, organic synthesis, and cross-coupling reactions.
For the reaction mechanism of monoacyl- and bisacylphosphine oxide photoinitiators.
Versatile UV photoinitiator for radical polymerization of unsaturated resins, especially pigmented formulations.
Phenylbis(2,4,6-trimethylbenzoyl) phosphineoxide (BAPO) is potential photoinitiator widely used in the preparation ofdental composites.
Application:
Phenylbis(2,4,6-trimethylbenzoyl) phosphine oxide can be used as a photoinitiator for:
Radical polymerization of dental resins. BAPO enhances the polymerization rate and conversion compared to other initiators.
Preparation of divinylbenzene modified polymer-based ceramic materials for high temperature sensor applications.
| Pubchem Sid | 488188362 |
|---|---|
| Pubchem Sid Url | https://pubchem.ncbi.nlm.nih.gov/substance/488188362 |
| Canonical Smiles | CC1=CC(=C(C(=C1)C)C(=O)P(=O)(C2=CC=CC=C2)C(=O)C3=C(C=C(C=C3C)C)C)C |
| IUPAC Name | [phenyl-(2,4,6-trimethylbenzoyl)phosphoryl]-(2,4,6-trimethylphenyl)methanone |
| InChIKey | GUCYFKSBFREPBC-UHFFFAOYSA-N |
| INCHI | 1S/C26H27O3P/c1-16-12-18(3)23(19(4)13-16)25(27)30(29,22-10-8-7-9-11-22)26(28)24-20(5)14-17(2)15-21(24)6/h7-15H,1-6H3 |
| Isomeric SMILES | CC1=CC(=C(C(=C1)C)C(=O)P(=O)(C2=CC=CC=C2)C(=O)C3=C(C=C(C=C3C)C)C)C |
| PubChem CID | 164512 |
| Molecular Weight | 418.46 |
Comprehensive hazard, handling, storage, and regulatory compliance document.
Download SDS →Lot-specific quality data. Enter your lot number to retrieve the exact COA.
Look up COA →Full quality attributes and acceptance criteria for this grade.
View spec sheet →Taxonomy Tree
| Kingdom | Organic compounds |
|---|---|
| Superclass | Benzenoids |
| Class | Benzene and substituted derivatives |
| Subclass | Benzoic acids and derivatives |
| Intermediate Tree Nodes | Not available |
| Direct Parent | Benzoic acids and derivatives |
| Alternative Parents | Benzoyl derivatives Phenylphosphines and derivatives Organophosphine oxides Organopnictogen compounds Organooxygen compounds Organic oxides Hydrocarbon derivatives |
| Molecular Framework | Aromatic homomonocyclic compounds |
| Substituents | Benzoic acid or derivatives - Benzoyl - Phenylphosphine - Organophosphine oxide - Organic oxygen compound - Organopnictogen compound - Organic oxide - Hydrocarbon derivative - Organophosphorus compound - Organooxygen compound - Aromatic homomonocyclic compound |
| Description | This compound belongs to the class of organic compounds known as benzoic acids and derivatives. These are organic compounds containing a carboxylic acid substituent attached to a benzene ring. |
| External Descriptors | Not available |
Find and download the COA for your product by matching the lot number on the packaging.
| Lot Number | Certificate Type | Date | Item |
|---|---|---|---|
| Certificate of Analysis | May 09, 2026 | P138333 | |
| Certificate of Analysis | May 09, 2026 | P138333 | |
| Certificate of Analysis | May 09, 2026 | P138333 | |
| Certificate of Analysis | Feb 27, 2026 | P138333 | |
| Certificate of Analysis | Feb 27, 2026 | P138333 | |
| Certificate of Analysis | Feb 27, 2026 | P138333 | |
| Certificate of Analysis | Feb 27, 2026 | P138333 | |
| Certificate of Analysis | Feb 04, 2026 | P138333 | |
| Certificate of Analysis | Oct 29, 2025 | P138333 | |
| Certificate of Analysis | Oct 29, 2025 | P138333 | |
| Certificate of Analysis | Oct 18, 2025 | P138333 | |
| Certificate of Analysis | Oct 18, 2025 | P138333 | |
| Certificate of Analysis | Oct 18, 2025 | P138333 | |
| Certificate of Analysis | Aug 30, 2025 | P138333 | |
| Certificate of Analysis | Aug 30, 2025 | P138333 | |
| Certificate of Analysis | Aug 30, 2025 | P138333 | |
| Certificate of Analysis | Aug 30, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 19, 2025 | P138333 | |
| Certificate of Analysis | Jun 07, 2025 | P138333 | |
| Certificate of Analysis | Jun 07, 2025 | P138333 | |
| Certificate of Analysis | Jun 07, 2025 | P138333 | |
| Certificate of Analysis | Mar 05, 2025 | P138333 | |
| Certificate of Analysis | Jan 14, 2025 | P138333 | |
| Certificate of Analysis | Jan 14, 2025 | P138333 | |
| Certificate of Analysis | Jan 14, 2025 | P138333 | |
| Certificate of Analysis | Jan 14, 2025 | P138333 | |
| Certificate of Analysis | Jul 18, 2024 | P138333 | |
| Certificate of Analysis | Jul 18, 2024 | P138333 | |
| Certificate of Analysis | Apr 11, 2024 | P138333 | |
| Certificate of Analysis | Apr 11, 2024 | P138333 | |
| Certificate of Analysis | Apr 11, 2024 | P138333 | |
| Certificate of Analysis | Jan 23, 2024 | P138333 | |
| Certificate of Analysis | Jan 23, 2024 | P138333 | |
| Certificate of Analysis | Jan 23, 2024 | P138333 | |
| Certificate of Analysis | Dec 07, 2023 | P138333 | |
| Certificate of Analysis | Dec 07, 2023 | P138333 | |
| Certificate of Analysis | Dec 07, 2023 | P138333 | |
| Certificate of Analysis | Nov 15, 2023 | P138333 | |
| Certificate of Analysis | Sep 19, 2023 | P138333 | |
| Certificate of Analysis | Sep 13, 2023 | P138333 | |
| Certificate of Analysis | Sep 13, 2023 | P138333 | |
| Certificate of Analysis | Sep 13, 2023 | P138333 | |
| Certificate of Analysis | Apr 18, 2023 | P138333 | |
| Certificate of Analysis | Jul 11, 2022 | P138333 | |
| Certificate of Analysis | Jun 20, 2022 | P138333 | |
| Certificate of Analysis | Jun 20, 2022 | P138333 | |
| Certificate of Analysis | Jun 20, 2022 | P138333 | |
| Certificate of Analysis | Jun 20, 2022 | P138333 | |
| Certificate of Analysis | Jun 20, 2022 | P138333 |
| Solubility | solubility acetone, acetonitrile, toluene, and hexanediol diacrylate: soluble |
|---|---|
| Sensitivity | Light sensitive |
| Melt Point(°C) | 131-135 °C |
| Molecular Weight | 418.500 g/mol |
| XLogP3 | 6.000 |
| Hydrogen Bond Donor Count | 0 |
| Hydrogen Bond Acceptor Count | 3 |
| Rotatable Bond Count | 5 |
| Exact Mass | 418.17 Da |
| Monoisotopic Mass | 418.17 Da |
| Topological Polar Surface Area | 51.200 Ų |
| Heavy Atom Count | 30 |
| Formal Charge | 0 |
| Complexity | 610.000 |
| Isotope Atom Count | 0 |
| Defined Atom Stereocenter Count | 0 |
| Undefined Atom Stereocenter Count | 0 |
| Defined Bond Stereocenter Count | 0 |
| Undefined Bond Stereocenter Count | 0 |
| The total count of all stereochemical bonds | 0 |
| Covalently-Bonded Unit Count | 1 |
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| 10. Qirui Wu, Yidan Xu, Songjiu Han, Jundong Zhu, Anbang Chen, Jiayu Zhang, Yujia Chen, Xiaoxiang Yang, Jianren Huang, Lunhui Guan. (2023) A liquid-free conducting ionoelastomer for 3D printable multifunctional self-healing electronic skin with tactile sensing capabilities. Materials Horizons, 10 (9): (3610-3621). [PMID:37334834] [10.1039/D3MH00612C] |
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| 12. Gong Jian, Wang Yuanjie, Zhou Mingjiong, Pei Xueliang, Huang Jing, Huang Zhengren, Huang Qing. (2023) Rapid Curing of Liquid Polycarbosilane and Its Conversion into Protective Coating. Silicon, 15 (13): (5803-5810). [PMID:] [10.1007/s12633-023-02481-9] |
| 13. Yangzhong Zhao, Tianhao Li, Yanpei Dang, Erxiao Wu, Jiaqi Sun, Xiao Zhang, Shiyu Du, Xiaoling Liu, Xiaosu Yi, Ping Cui, Yujie Song, Liu He. (2023) UV-Curable Polyborosilazane Precursors for SiBCN Coatings under Harsh Environments. ACS Applied Polymer Materials, [PMID:] [10.1021/acsapm.2c02141] |
| 14. Yubei Zhang, Shan Li, Xiaodong Liu, Xin Li, Wenyan Duan, Liang Li, Bingshan Liu, Gong Wang. (2022) Additive manufacturing and characterization of microstructure evolution of Inconel 718 superalloy produced by vat photopolymerization. Additive Manufacturing, [PMID:] [10.1016/j.addma.2022.103367] |
| 15. Wei Ding, Hongyan Li, Hongli Liu, Yinghan Zheng. (2022) Thermal insulation and antioxidation of vertical graphene oxide-grafted carbon nanofiber aerogels with ceramic coating. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 106 (4): (2501-2514). [PMID:] [10.1111/jace.18929] |
| 16. Qirui Wu, Songjiu Han, Jundong Zhu, Anbang Chen, Jiayu Zhang, Zhen Yan, Jiantao Liu, Jianren Huang, Xiaoxiang Yang, Lunhui Guan. (2022) Stretchable and self-healing ionic conductive elastomer for multifunctional 3D printable sensor. CHEMICAL ENGINEERING JOURNAL, [PMID:] [10.1016/j.cej.2022.140328] |
| 17. Jiaqi Luo, Weijiu Huang, Bitao Liu, Bing Liu. (2022) Evaluation of Zirconia Ceramic Processed by Digital Light 3D Printing Applicated as Solid-Electrolyte Sensor. ECS Journal of Solid State Science and Technology, 11 (10): (107001). [PMID:] [10.1149/2162-8777/ac9756] |
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| 19. Xinzhu Gao, Wei Yuan, Yang Yang, Yaopeng Wu, Chun Wang, Xuyang Wu, Xiaoqing Zhang, Yuhang Yuan, Yong Tang, Yu Chen, Chenghao Yang, Bote Zhao. (2022) High-Performance and Highly Safe Solvate Ionic Liquid-Based Gel Polymer Electrolyte by Rapid UV-Curing for Lithium-Ion Batteries. ACS Applied Materials & Interfaces, [PMID:36102960] [10.1021/acsami.2c13325] |
| 20. Shilu Zhu, Weijie Zheng, Jian Wang, Xingmiao Fang, Lijiu Zhang, Fuzhou Niu, Ying Wang, Tingting Luo, Guangli Liu, Runhuai Yang. (2022) Interactive and synergistic behaviours of multiple heterogeneous microrobots. LAB ON A CHIP, 22 (18): (3412-3423). [PMID:35880648] [10.1039/D2LC00265E] |
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| 54. Yifan Cheng, Shilu Zhu, Hui Ma, Shengting Zhang, Kun Wei, Shiyu Wu, Yongkang Tang, Ping Liu, Tingting Luo, Guangli Liu, Runhuai Yang. (2024) Multimodal Locomotion and Dynamic Interaction of Hydrogel Microdisks at the Air–Water Interface under Magnetic and Light Stimuli. ACS Applied Materials & Interfaces, [PMID:39498969] [10.1021/acsami.4c12151] |
| 55. Mingfeng Chen, Junliang Chen, Sanhu Liu, Dongqing He, Yong Wang, Hongtao Chen, Dongdong Jin, Xing Ma. (2024) Multiprogrammable Anisotropic Soft Material via Magneto-Orientation of Ferromagnetic Nanoplates. ADVANCED FUNCTIONAL MATERIALS, [PMID:] [10.1002/adfm.202411036] |
| 56. Lin Jia, Wang Shuai, Yang Yihang, Huang Guimei, Wang Jinhuo. (2024) Preparation and property characterization of Zr-modified Si-O-C-based precursor ceramics through three-dimensional printing. Journal of the Australian Ceramic Society, [PMID:] [10.1007/s41779-024-01110-x] |
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