
(R)-(-)-1,1'-Binaphthol-2,2'-bis(trifluoromethanesulfonate) | CAS:126613-06-7
(R)-(-)-1,1'-Binaphthol-2,2'-bis(trifluoromethanesulfonate)
- 名称:(R)-(-)-1,1'-联-2-萘酚二(三氟甲磺酸酯) | (R)-(-)-1,1'-Binaphthol-2,2'-bis(trifluoromethanesulfonate)
- CAS号:126613-06-7
- 别名:(R)-1,1'-Binaphthalene-2,2'-diyl bis(trifluoromethanesulfonate); (R)-(-)-BINOL-TF2
- 分子式:C22H12F6O6S2
- 分子量:550.45
- EINESC号:
产品描述
物理化学性质
熔点 | 80-85 ºC |
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比旋光度 | -149 º (c=1, CHCl3) |
水溶性 | 不溶 |
安全数据
危险品标志 | C |
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危险类别码 | R34 |
安全说明书 | S26;S36/37/39;S45 |
产品合成路线
名称 | CAS号 |
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Engineering Tough, Injectable, Naturally Derived, Bioadhesive Composite Hydrogels.Maryam Tavafoghi et al.Advanced healthcare materials, 9(10), e1901722-e1901722 (2020-04-25)
Endothelial/Mesenchymal Stem Cell Crosstalk Within Bioprinted Cocultures.Marco Santoro et al.Tissue engineering. Part A, 26(5-6), 339-349 (2019-09-29)
Bone-derived dECM/alginate bioink for fabricating a 3D cell-laden mesh structure for bone tissue engineering.Jiun Lee et al.Carbohydrate polymers, 250, 116914-116914 (2020-10-15)
Hydrogel co-networks of gelatine methacrylate and poly(ethylene glycol) diacrylate sustain 3D functional in vitro models of intestinal mucosa.Anna Vila et al.Biofabrication, 12(2), 025008-025008 (2019-12-06)
Toward zonally tailored scaffolds for osteochondral differentiation of synovial mesenchymal stem cells.Patricia Diaz-Rodriguez et al.Journal of biomedical materials research. Part B, Applied biomaterials, 107(6), 2019-2029 (2018-12-15)
Hydrogels of agarose, and methacrylated gelatin and hyaluronic acid are more supportive for in vitro meniscus regeneration than three dimensional printed polycaprolactone scaffolds.Gokhan Bahcecioglu et al.International journal of biological macromolecules, 122, 1152-1162 (2018-09-16)
Nanoengineered Osteoinductive Bioink for 3D Bioprinting Bone Tissue.David Chimene et al.ACS applied materials & interfaces, 12(14), 15976-15988 (2020-02-25)
Molecularly-ordered hydrogels with controllable, anisotropic stimulus response.Jennifer M Boothby et al.Soft matter, 15(22), 4508-4517 (2019-05-17)
A General Strategy for Extrusion Bioprinting of Bio-Macromolecular Bioinks through Alginate-Templated Dual-Stage Crosslinking.Kai Zhu et al.Macromolecular bioscience, 18(9), e1800127-e1800127 (2018-06-27)
Characterization of Mechanically Matched Hydrogel Coatings to Improve the Biocompatibility of Neural Implants.Kevin C Spencer et al.Scientific reports, 7(1), 1952-1952 (2017-05-18)
Development of Electrically Conductive Double-Network Hydrogels via One-Step Facile Strategy for Cardiac Tissue Engineering.Boguang Yang et al.Advanced healthcare materials, 5(4), 474-488 (2015-12-03)
Radiation Grafting of a Polymeric Prodrug onto Silicone Rubber for Potential Medical/Surgical Procedures.Hector Magaña et al.Polymers, 12(6) (2020-06-11)
3D bioprinting of BMSC-laden methacrylamide gelatin scaffolds with CBD-BMP2-collagen microfibers.Mingchun Du et al.Biofabrication, 7(4), 044104-044104 (2015-12-20)
Photo-crosslinked alginate nano-hydroxyapatite paste for bone tissue engineering.Kanchan Maji et al.Biomedical materials (Bristol, England), 15(5), 055019-055019 (2020-05-22)
A methacrylic hyaluronic acid derivative for potential application in oral treatment of celiac disease.Giovanna Pitarresi et al.Drug development and industrial pharmacy, 43(9), 1480-1488 (2017-04-14)
Visible Light Cross-Linking of Gelatin Hydrogels Offers an Enhanced Cell Microenvironment with Improved Light Penetration Depth.Khoon S Lim et al.Macromolecular bioscience, 19(6), e1900098-e1900098 (2019-04-27)
Gelatin Methacryloyl Bioadhesive Improves Survival and Reduces Scar Burden in a Mouse Model of Myocardial Infarction.Leon M Ptaszek et al.Journal of the American Heart Association, 9(11), e014199-e014199 (2020-05-28)
Scanningless and continuous 3D bioprinting of human tissues with decellularized extracellular matrix.Claire Yu et al.Biomaterials, 194, 1-13 (2018-12-19)
Development of poly(ethylene glycol) hydrogels for salivary gland tissue engineering applications.Andrew D Shubin et al.Tissue engineering. Part A, 21(11-12), 1733-1751 (2015-03-13)
Embedded 3D Photopatterning of Hydrogels with Diverse and Complex Architectures for Tissue Engineering and Disease Models.Shruti Krishna Davey et al.Tissue engineering. Part C, Methods, 21(11), 1188-1196 (2015-07-15)
Approaches for In Situ Monitoring of Matrix Development in Hydrogel-Based Engineered Cartilage.Shital Kandel et al.Tissue engineering. Part C, Methods, 26(4), 225-238 (2020-03-07)
Gradient nanocomposite hydrogels for interface tissue engineering.Lauren M Cross et al.Nanomedicine : nanotechnology, biology, and medicine, 14(7), 2465-2474 (2017-05-31)
High-Resolution 3D Bioprinting of Photo-Cross-linkable Recombinant Collagen to Serve Tissue Engineering Applications.Liesbeth Tytgat et al.Biomacromolecules, 21(10), 3997-4007 (2020-08-26)
In vitro and in vivo analysis of visible light crosslinkable gelatin methacryloyl (GelMA) hydrogels.Iman Noshadi et al.Biomaterials science, 5(10), 2093-2105 (2017-08-15)
Synergistic Effect of Matrix Stiffness and Inflammatory Factors on Osteogenic Differentiation of MSC.Wanting Wan et al.Biophysical journal, 117(1), 129-142 (2019-06-11)
Oligonucleotide-functionalized hydrogels for sustained release of small molecule (aptamer) therapeutics.Nikunj K Agrawal et al.Acta biomaterialia, 102, 315-325 (2019-11-25)
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