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1471986-40-9

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1471986-40-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1471986-40-9 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,4,7,1,9,8 and 6 respectively; the second part has 2 digits, 4 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 1471986-40:
(9*1)+(8*4)+(7*7)+(6*1)+(5*9)+(4*8)+(3*6)+(2*4)+(1*0)=199
199 % 10 = 9
So 1471986-40-9 is a valid CAS Registry Number.

1471986-40-9Downstream Products

1471986-40-9Relevant academic research and scientific papers

ANTI-PROLIFERATIVE COMPOUNDS AND USES THEREOF

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Paragraph 0288, (2014/02/15)

The present invention provides novel compounds of Formula (I), and pharmaceutically acceptable salts, tautomers, stereoisomers, solvates, hydrates, polymorphs, and compositions thereof. Also provided are methods and kits involving the inventive compounds

Toward oriented surface architectures with three coaxial charge-transporting pathways

Sforazzini, Giuseppe,Orentas, Edvinas,Bolag, Altan,Sakai, Naomi,Matile, Stefan

supporting information, p. 12082 - 12090 (2013/09/02)

We report a synthetic method to build oriented architectures with three coaxial π-stacks directly on solid surfaces. The approach operates with orthogonal dynamic bonds, disulfides and hydrazones, self-organizing surface-initiated polymerization (SOSIP), and templated stack-exchange (TSE). Compatibility with naphthalenediimides, perylenediimides, squaraines, fullerenes, oligothiophenes, and triphenylamine is confirmed. Compared to photosystems composed of two coaxial channels, the installation of a third channel increases photocurrent generation up to 10 times. Limitations concern giant stack exchangers that fail to enter SOSIP architectures (e.g., phthalocyanines surrounded by three fullerenes), and planar triads that can give folded or interdigitated charge-transfer architectures rather than three coaxial channels. The reported triple-channel surface architectures are as sophisticated as it gets today, the directionality of their construction promises general access to multichannel architectures with multicomponent gradients in each individual channel. The reported approach will allow us to systematically unravel the ultrafast photophysics of molecular dyads and triads in surface architectures, and might become useful to develop conceptually innovative optoelectronic devices.

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