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1449518-75-5

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1449518-75-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1449518-75-5 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,4,4,9,5,1 and 8 respectively; the second part has 2 digits, 7 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 1449518-75:
(9*1)+(8*4)+(7*4)+(6*9)+(5*5)+(4*1)+(3*8)+(2*7)+(1*5)=195
195 % 10 = 5
So 1449518-75-5 is a valid CAS Registry Number.

1449518-75-5Upstream product

1449518-75-5Downstream Products

1449518-75-5Relevant academic research and scientific papers

Substituent effect on the energy barrier for σ-bond formation from π-single-bonded species, singlet 2,2-dialkoxycyclopentane-1,3-diyls

Ye, Jianhuai,Fujiwara, Yoshihisa,Abe, Manabu

, p. 925 - 933 (2013)

Background: Localized singlet diradicals are in general quite short-lived intermediates in processes involving homolytic bondcleavage and formation reactions. In the past decade, long-lived singlet diradicals have been reported in cyclic systems such as cyclobutane-1,3-diyls and cyclopentane-1,3-diyls. Experimental investigation of the chemistry of singlet diradicals has become possible. The present study explores the substituents and the effect of their substitution pattern at the C(1)-C(3) positions on the lifetime of singlet octahydropentalene-1,3-diyls to understand the role of the substituents on the reactivity of the localized singlet diradicals. Results: A series of singlet 2,2-dialkoxy-1,3-diaryloctahydropentalene-1,3-diyls DR were generated in the photochemical denitrogenation of the corresponding azoalkanes AZ. The ring-closed products CP, i.e., 3,3-dialkoxy-2,4-diphenyltricyclo[ 3.3.0.0 2,4]octanes, were quantitatively obtained in the denitrogenation reaction. The first-order decay process (k = 1/τ) was observed for the fate of the singlet diradicals DR (λmax ≈ 580-590 nm). The activation parameters, ΔH? and ΔS ?, for the ringclosing reaction (σ-bond formation process) were determined by the temperature-dependent change of the lifetime. The energy barrier was found to be largely dependent upon the substituents Ar and Ar'. The singlet diradical DRf (Ar = 3,5-dimethoxyphenyl, OCH2Ar' = OCH2(3,5-dimethoxyphenyl)) was the longest-lived, τ293 = 5394 ± 59 ns, among the diradicals studied here. The lifetime of the parent diradical DR (Ar = Ph, OCH2Ar' = OCH 3) was 299 ± 2 ns at 293 K. Conclusion: The lifetimes of the singlet 1,3-diyls are found to be largely dependent on the substituent pattern of Ar and Ar' at the C(1)-C(3) positions. Both the enthalpy and entropy effect were found to play crucial roles in increasing the lifetime.

Kinetic stabilization and reactivity of π single-bonded species: Effect of the alkoxy group on the lifetime of singlet 2,2-dialkoxy-1,3- diphenyloctahydropentalene-1,3-diyls

Nakagaki, Tomoyuki,Sakai, Tomoko,Mizuta, Tsutomu,Fujiwara, Yoshihisa,Abe, Manabu

, p. 10395 - 10404 (2013/09/02)

Kinetic stabilization and reactivity of π single-bonded species have been investigated in detail by generating a series of singlet 2,2-dialkoxy-1,3-diphenyloctahydropentalene-1,3-diyls (DRs). The lifetime at 293 K in benzene was found to increase when the carbon chain length of the alkoxy groups was increased; 292 ns (DRb; OR=OR′=OCH3) 2H5) 3H7) ≈2292 ns (DRe; OR=OR′=OC 6H13) ≈2146 ns (DRf; OR=OR′=OC10H 21). DRh (OR=OC3H7, OR′=OCH3; 935 ns) with the mixed-acetal moiety is a longer-lived species than another diastereomer DRg (OR=OCH3, OR′=OC3H7; 516 ns). Activation parameters determined for the first-order decay process reveal that the enthalpy factor plays a crucial role in determining the energy barrier of the ring-closing reaction, that is, from the π-bonding to the σ-bonding compounds. Computational studies using density functional theory provided more insight into the structures of the singlet species with π single-bonded character and the transition states for the ring-closing reaction, thereby clarifying the role of the alkoxy group on the lifetime and the stereoselectivity of the ring-closing reaction. Copyright

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