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1254947-91-5

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1254947-91-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1254947-91-5 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,2,5,4,9,4 and 7 respectively; the second part has 2 digits, 9 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 1254947-91:
(9*1)+(8*2)+(7*5)+(6*4)+(5*9)+(4*4)+(3*7)+(2*9)+(1*1)=185
185 % 10 = 5
So 1254947-91-5 is a valid CAS Registry Number.

1254947-91-5Relevant articles and documents

Controlling electron transfer in donor-bridge-acceptor molecules using cross-conjugated bridges

Ricks, Annie Butler,Solomon, Gemma C.,Colvin, Michael T.,Scott, Amy M.,Chen, Kun,Ratner, Mark A.,Wasielewski, Michael R.

supporting information; experimental part, p. 15427 - 15434 (2011/01/10)

Photoinitiated charge separation (CS) and recombination (CR) in a series of donor-bridge-acceptor (D-B-A) molecules with cross-conjugated, linearly conjugated, and saturated bridges have been compared and contrasted using time-resolved spectroscopy. The photoexcited charge transfer state of 3,5-dimethyl-4-(9-anthracenyl)julolidine (DMJ-An) is the donor, and naphthalene-1,8:4,5-bis(dicarboximide) (NI) is the acceptor in all cases, along with 1,1-diphenylethene, trans-stilbene, diphenylmethane, and xanthone bridges. Photoinitiated CS through the cross-conjugated 1,1-diphenylethene bridge is about 30 times slower than through its linearly conjugated trans-stilbene counterpart and is comparable to that observed through the diphenylmethane bridge. This result implies that cross-conjugation strongly decreases the π orbital contribution to the donor-acceptor electronic coupling so that electron transfer most likely uses the bridge σ system as its primary CS pathway. In contrast, the CS rate through the cross-conjugated xanthone bridge is comparable to that observed through the linearly conjugated trans-stilbene bridge. Molecular conductance calculations on these bridges show that cross-conjugation results in quantum interference effects that greatly alter the through-bridge donor-acceptor electronic coupling as a function of charge injection energy. These calculations display trends that agree well with the observed trends in the electron transfer rates.

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