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2,2-(2)H2-pyrrolidine, also known as deuterium-labeled pyrrolidine, is a chemical compound with the molecular formula C4D8NH2. It is a deuterated analog of the parent compound pyrrolidine, which is a cyclic amine with a five-membered ring structure. The presence of deuterium atoms in <2,2-(2)H2>pyrrolidine makes it useful in various applications, such as in the study of reaction mechanisms, isotope labeling, and as a tracer in chemical reactions. Due to its unique properties, 2,2-(2)H2-pyrrolidine can provide valuable insights into the behavior of molecules and reactions, making it an important tool in the field of chemistry and related disciplines.

694-23-5

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694-23-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 694-23-5 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 6,9 and 4 respectively; the second part has 2 digits, 2 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 694-23:
(5*6)+(4*9)+(3*4)+(2*2)+(1*3)=85
85 % 10 = 5
So 694-23-5 is a valid CAS Registry Number.

694-23-5Upstream product

694-23-5Relevant academic research and scientific papers

Coordination-Induced N-H Bond Weakening in a Molybdenum Pyrrolidine Complex: Isotopic Labeling Provides Insight into the Pathway for H2Evolution

Bezdek, Máté J.,Pelczer, István,Chirik, Paul J.

, p. 3050 - 3059 (2020)

The synthesis and characterization of a cationic molybdenum pyrrolidine complex are described that exhibits significant coordination-induced N-H bond weakening. The N-H bond dissociation free energy (BDFE) of the coordinated pyrrolidine in [(PhTpy)(PPh2Me)2Mo(NH(pyrr))][BArF24] ([1-NH(pyrr)]+PhTpy = 4′-Ph-2,2′,6′,2″-terpyridine, NH(pyrr) = pyrrolidine, ArF24 = [C6H3-3,5-(CF3)2]4) was determined to be between 41 and 51 kcal mol-1 by thermochemical analysis and supported by a density functional theory (DFT) computed value of 48 kcal mol-1. The complex [1-NH(pyrr)]+ underwent proton-coupled electron transfer (PCET) to 2,4,6-tri-tert-butylphenoxyl radical, as well as spontaneous H2 evolution upon gentle heating to furnish the corresponding molybdenum pyrrolidide complex [(PhTpy)(PPh2Me)2Mo(N(pyrr))][BArF24] ([1-N(pyrr)]+). Thermolysis of the deuterated isotopologue [1-ND(pyrr)]+ still produced H2 with concomitant incorporation of the isotopic label into the pyrrolidide ligand in the product [(1-N(pyrr-dn)]+ (n = 0-2), consistent with an H2 evolution pathway involving intramolecular H-H bond formation followed by an intermolecular product-forming PCET step. These observations provide the context for understanding H2 evolution in the nonclassical ammine complex [(PhTpy)(PPh2Me)2Mo(NH3)][BArF24] ([1-NH3]+) and are supported by DFT-computed reaction thermochemistry. Overall, these studies offer rare insight into the H2 formation pathway in nonclassical amine complexes with N-H BDFEs below the thermodynamic threshold for H2 evolution and inform the development of well-defined, thermodynamically potent PCET reagents.

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