Molecule:100680: Difference between revisions
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molecule
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|moleculeKey=HNVRWFFXWFXICS-UHFFFAOYSA-N | |moleculeKey=HNVRWFFXWFXICS-UHFFFAOYSA-N | ||
|molOrRxn= | |molOrRxn= | ||
-INDIGO- | -INDIGO-01292410532D | ||
0 0 0 0 0 0 0 0 0 0 0 V3000 | 0 0 0 0 0 0 0 0 0 0 0 V3000 | ||
Line 17: | Line 17: | ||
M V30 COUNTS 37 45 0 0 0 | M V30 COUNTS 37 45 0 0 0 | ||
M V30 BEGIN ATOM | M V30 BEGIN ATOM | ||
M V30 1 | M V30 1 C 10.4348 -2.40007 0.0 0 | ||
M V30 2 C | M V30 2 C 12.1652 -2.39959 0.0 0 | ||
M V30 3 C | M V30 3 C 11.3016 -1.89997 0.0 0 | ||
M V30 4 C | M V30 4 C 12.1652 -3.40053 0.0 0 | ||
M V30 5 C | M V30 5 C 10.4348 -3.40502 0.0 0 | ||
M V30 6 | M V30 6 N 11.3038 -3.90003 0.0 0 | ||
M V30 7 C | M V30 7 C 13.0317 -3.8997 0.0 0 | ||
M V30 8 C | M V30 8 C 14.762 -3.89639 0.0 0 | ||
M V30 9 C | M V30 9 C 13.8976 -3.39818 0.0 0 | ||
M V30 10 C | M V30 10 C 14.7636 -4.89733 0.0 0 | ||
M V30 11 N | M V30 11 N 13.0333 -4.90464 0.0 0 | ||
M V30 12 C | M V30 12 C 13.9031 -5.39824 0.0 0 | ||
M V30 13 | M V30 13 C 13.9086 -6.39822 0.0 0 | ||
M V30 14 C | M V30 14 C 14.7834 -7.8911 0.0 0 | ||
M V30 15 C | M V30 15 C 14.7781 -6.89348 0.0 0 | ||
M V30 16 C 13. | M V30 16 C 13.9196 -8.39691 0.0 0 | ||
M V30 17 | M V30 17 N 13.0414 -6.90605 0.0 0 | ||
M V30 18 C 13. | M V30 18 C 13.0533 -7.90605 0.0 0 | ||
M V30 19 C | M V30 19 C 12.1923 -8.4147 0.0 0 | ||
M V30 20 C 11. | M V30 20 C 11.3437 -9.92259 0.0 0 | ||
M V30 21 C | M V30 21 C 12.2028 -9.41536 0.0 0 | ||
M V30 22 C 10. | M V30 22 C 10.4715 -9.43141 0.0 0 | ||
M V30 23 N | M V30 23 N 11.3167 -7.92156 0.0 0 | ||
M V30 24 C 10. | M V30 24 C 10.459 -8.4358 0.0 0 | ||
M V30 25 C | M V30 25 C 9.58578 -7.94845 0.0 0 | ||
M V30 26 C 7. | M V30 26 C 7.85569 -7.97527 0.0 0 | ||
M V30 27 C 8. | M V30 27 C 8.7267 -8.46169 0.0 0 | ||
M V30 28 C | M V30 28 C 7.84046 -6.97444 0.0 0 | ||
M V30 29 N 9. | M V30 29 N 9.57049 -6.94362 0.0 0 | ||
M V30 30 C 8. | M V30 30 C 8.69409 -6.46189 0.0 0 | ||
M V30 31 C 8. | M V30 31 C 8.67501 -5.46207 0.0 0 | ||
M V30 32 | M V30 32 C 7.78003 -3.98121 0.0 0 | ||
M V30 33 C | M V30 33 C 7.7988 -4.97867 0.0 0 | ||
M V30 34 C | M V30 34 C 8.63682 -3.46372 0.0 0 | ||
M V30 35 | M V30 35 N 9.53523 -4.94251 0.0 0 | ||
M V30 36 C | M V30 36 C 9.50969 -3.94276 0.0 0 | ||
M V30 37 Ru | M V30 37 Ru 11.3013 -5.84251 0.0 0 CHG=2 | ||
M V30 END ATOM | M V30 END ATOM | ||
M V30 BEGIN BOND | M V30 BEGIN BOND | ||
Line 62: | Line 62: | ||
M V30 5 2 5 6 | M V30 5 2 5 6 | ||
M V30 6 1 6 4 | M V30 6 1 6 4 | ||
M V30 7 1 | M V30 7 1 4 7 | ||
M V30 8 2 9 7 | M V30 8 2 9 7 | ||
M V30 9 2 10 8 | M V30 9 2 10 8 | ||
Line 75: | Line 75: | ||
M V30 18 2 17 18 | M V30 18 2 17 18 | ||
M V30 19 1 18 16 | M V30 19 1 18 16 | ||
M V30 20 1 | M V30 20 1 18 19 | ||
M V30 21 2 21 19 | M V30 21 2 21 19 | ||
M V30 22 2 22 20 | M V30 22 2 22 20 | ||
Line 82: | Line 82: | ||
M V30 25 2 23 24 | M V30 25 2 23 24 | ||
M V30 26 1 24 22 | M V30 26 1 24 22 | ||
M V30 27 2 | M V30 27 2 27 25 | ||
M V30 28 | M V30 28 2 28 26 | ||
M V30 29 | M V30 29 1 25 29 | ||
M V30 30 1 | M V30 30 1 26 27 | ||
M V30 31 | M V30 31 2 29 30 | ||
M V30 32 | M V30 32 1 30 28 | ||
M V30 33 | M V30 33 1 30 31 | ||
M V30 34 | M V30 34 2 33 31 | ||
M V30 35 | M V30 35 2 34 32 | ||
M V30 36 | M V30 36 1 31 35 | ||
M V30 37 1 | M V30 37 1 32 33 | ||
M V30 38 2 | M V30 38 2 35 36 | ||
M V30 39 1 36 | M V30 39 1 36 34 | ||
M V30 40 10 | M V30 40 10 35 37 | ||
M V30 41 10 | M V30 41 10 37 6 | ||
M V30 42 10 | M V30 42 10 11 37 | ||
M V30 43 10 | M V30 43 10 37 17 | ||
M V30 44 10 | M V30 44 10 23 37 | ||
M V30 45 10 | M V30 45 10 37 29 | ||
M V30 END BOND | M V30 END BOND | ||
M V30 END CTAB | M V30 END CTAB | ||
M END | M END | ||
|smiles= | |||
|smiles=C1C=N2[Ru+2]3(N4=C(C5N3=CC=CC=5)C=CC=C4)3(N4=CC=CC=C4C4C=CC=CN=43)N3=CC=CC=C3C2=CC=1 | |||
|inchi=1S/3C10H8N2.Ru/c3*1-3-7-11-9(5-1)10-6-2-4-8-12-10;/h3*1-8H;/q;;;+2 | |inchi=1S/3C10H8N2.Ru/c3*1-3-7-11-9(5-1)10-6-2-4-8-12-10;/h3*1-8H;/q;;;+2 | ||
|inchikey=HNVRWFFXWFXICS-UHFFFAOYSA-N | |inchikey=HNVRWFFXWFXICS-UHFFFAOYSA-N |
Revision as of 10:53, 29 January 2024
Properties | |
---|---|
CID | 65240 |
CAS | 15158-62-0 |
IUPAC-Name | 2-pyridin-2-ylpyridine;ruthenium(2+) |
Abbreviation | Ru(bpy)3 |
Trivialname | tris(22'-bipyridyl)ruthenium(ii) |
Exact mass | 570.110585 |
Molecular formula | C30H24N6Ru+2 |
LogP | n/a |
Has vendors | true |
Molecular role | n/a |
Synonyms | tris(22'-bipyridyl)ruthenium(ii),tris(bipyridine)ruthenium(ii),2-pyridin-2-ylpyridine;ruthenium(2+),tris(22'-bipyridine)ruthenium ii,tris(22'-bipyridine)ruthenium(ii),ru(ii)-tris(bipyridyl),ruthenium ii tris(22'-bipyridine),tris(22/'-bipyridine)ruthenium ii,q27123697,ruthenium(2+) tris(22'-bipyridine-nn')- (oc-6-11)- |
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Molecule is used on following pages
topic
- Photocatalytic CO2 conversion to CO
- Homogeneous photocatalytic CO2 conversion
- Photocatalytic CO2 conversion to HCOOH
publication
- Water-Assisted Highly Efficient Photocatalytic Reduction of CO2 to CO with Noble Metal-Free Bis(terpyridine)iron(II) Complexes and an Organic Photosensitizer
- Photocatalytic CO2 reduction using a Mn complex as a catalyst
- Merging an organic TADF photosensitizer and a simple terpyridine–Fe(iii) complex for photocatalytic CO2 reduction
- Visible-light-driven methane formation from CO2 with a molecular iron catalyst
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction
investigation
- Photocatalytic CO2 reduction using a Mn complex as a catalyst/Photocatalytic CO2 reduction: conditions optimization
- Water-Assisted Highly Efficient Photocatalytic Reduction of CO2 to CO with Noble Metal-Free Bis(terpyridine)iron(II) Complexes and an Organic Photosensitizer/photocatalytic CO2 conversion
- Merging an organic TADF photosensitizer and a simple terpyridine–Fe(iii) complex for photocatalytic CO2 reduction/photocatalytic reduction of CO2 to CO
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/Iron-Catalyzed Photochemical CO2 Reduction under diverse conditions
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/CO2 Reduction under diverse conditions with diverse sensitizers
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/Iron-Catalyzed Photochemical CO2 Reduction under diverse conditions error
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/Table 2 Conversion with Co catalyst
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/Table 2 conversion with Co catalyst
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/Table 2 Co catalyst testing
- Exchange Coupling Determines Metal-Dependent Efficiency for Iron- and Cobalt-Catalyzed Photochemical CO2 Reduction/testtest2