Kinetic investigation of the hydrolysis of uranium hexafluoride gas
Direct observation of the hydrolysis reaction kinetics of gaseous UF 6 have been measured under low-pressure conditions.
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Direct observation of the hydrolysis reaction kinetics of gaseous UF 6 have been measured under low-pressure conditions.
Depleted uranium hexafluoride (UF 6 ), a stockpiled byproduct of the nuclear fuel cycle, reacts readily with atmospheric humidity, but the mechanism is poorly understood. Here we compare several potential initiation steps at a consistent level of theory, generating underlying structures and vibrational modes using hybrid density functional theory (DFT) and computing relative energies of stationary points with double-hybrid (DH) DFT. A benchmark comparison is performed to assess the quality of DH-DFT data using reference energy differences obtained using a complete-basis-limit coupled-cluster (CC) composite method. The associated large-basis CC computations were enabled by a new general-purpose pseudopotential capability implemented as part of this work. Dispersion-corrected parameter-free DH-DFT methods, namely PBE0-DH-D3(BJ) and PBE-QIDH-D3(BJ), provided mean unsigned errors within chemical accuracy (1 kcal mol -1 ) for a set of barrier heights corresponding to the most energetically favorable initiation steps. The hydrolysis mechanism is found to proceed via intermolecular hydrogen transfer within van der Waals complexes involving UF 6 , UF 5 OH, and UOF 4 , in agreement with previous studies, followed by the formation of a previously unappreciated dihydroxide intermediate, UF 4 (OH) 2 . The dihydroxide is predicted to form under both kinetic and thermodynamic control, and, unlike the alternate pathway leading to the UO 2 F 2 monomer, its reaction energy is exothermic, in agreement with observation. Finally, harmonic and anharmonic vibrational simulations are performed to reinterpret literature infrared spectroscopy in light of this newly identified species.
SEM images of MMOs derived from Mg–Al-acetate intercalated LDHs synthesized by acetamide hydrolysis with (a) Mg/Al = 3, (b) Mg/Al = 4 and their high temperature CO 2 capture capacity versus temperature (c) were obtained.
The engineered structures and active sites of enzyme catalysts give rise to high catalytic activity and selectivity toward desired reactions. We have employed a biomass-derived difuran compound to append N-substituted maleimides with amino acid (glutamic acid) substitution by Diels–Alder reaction to mimic the chemical functional groups that comprise the active site channels in enzyme catalysts. The difunctionality of the biomass-derived difuran allows production of Diels–Alder adducts by appending two amino acid moieties to form a difunctional organocatalyst. The catalytic activity of the organocatalyst can be improved by immobilizing the organocatalyst on solid supporting materials. Accordingly, the structures of these immobilized organocatalysts can be engineered to mimic enzymatic active sites and to control the interaction between reactants, products, and transition states of catalytic reactions. Lactose hydrolysis was carried out to provide an example of industrial application of this approach to design and fabricate new supported organocatalysts as artificial enzymes.
We have developed a colorimetric assay for the high throughput detection of enzymatic ester hydrolysis of PET plastic monomers, applied in a microplate format.
Spatial and temporal resolved mapping of infrared spectra of cellulose during enzymatic hydrolysis towards developing sustainable bioconversion processes to materials, fuels, and chemicals.
A mild acid hydrolysis process is developed for upgrading of the anhydrosugars of bio-oil heavy ends into bio-ethanol with high compatibility with downstream separation and fermentation of sugars in a pyrolysis based biorefinery.
A Schiff base derived from ethylenediamine and heptane-2,4,6-trione, namely, 5,9,14,18-tetramethyl-1,4,10,13-tetraazacyclooctadeca-5,8,14,17-tetraene-7,16- dione (C 18 H 28 N 4 O 2 ), abbreviated H 4 daaden, was prepared and characterized for the first time by single-crystal X-ray diffraction. The atoms of the Schiff base occupy two different planes and thus the molecule is essentially nonplanar. An axis running through the C–C atoms of the ethylenediamine groups separate the two planes and these two planes are connected by bridging ethylene groups showing an angle of 117.34 (8)°. As a result, the side view of the molecule shows a ‘step-stool’ conformation. The nonplanar nature of the Schiff base plays an important role in metal coordination, which leads to partial hydrolysis of the ring structure
Footwear, carpet, automotive interiors, and multilayer packaging are examples of products manufactured from several types of polymers whose inextricability poses substantial challenges for recycling at the end of life. Here, we show that chemical circularity in mixed-polymer recycling becomes possible by controlling the rates of depolymerization of polydiketoenamines (PDK) over several orders of magnitude through molecular engineering. Stepwise deconstruction of mixed-PDK composites, laminates, and assemblies is chemospecific, allowing a prescribed subset of monomers, fillers, and additives to be recovered under pristine condition at each stage of the recycling process. We provide a theoretical framework to understand PDK depolymerization via acid-catalyzed hydrolysis and experimentally validate trends predicted for the rate-limiting step. The control achieved by PDK resins in managing chemical and material entropy points to wide-ranging opportunities for pairing circular design with sustainable manufacturing.
Dipeptidyl arylamidase I of bovine pituitary tissue and chloride and sulfhydryl activation of seryltyrosyl-beta-naphthylamide hydrolysis
Fluorescent emission measurements of nucleic acids - purine and purine nucleotide assays by chemical hydrolysis
Catalytic effect of thermal polyanhydro-alpha- amino acids on hydrolysis of p-nitrophenylacetate, noting role of histidine residues
Catalytic hydrolysis of phosphate ester bonds by proteinoids /thermal polymers of amino acids/, discussing effects of enzyme inhibitors on reaction
Proline residue effects on hydrolysis of peptide bonds by thermolysin
Temperature effects on hydrolysis reaction in protein amino acids
Adenosine phosphates hydrolysis in solutions containing Ca ions and in synthetic seawater, investigating living systems energy transfer and prebiological evolution
Proteins hydrolysis, investigating temperature effect on reaction, determining optimum conditions for maximum amino acids yields