Abstract:
The present invention relates to a process for the preparation of a zeolitic material having a BEA framework structure comprising the steps of: (i) providing one or more zeolitic materials having a BEA framework structure, wherein the BEA framework structure comprises YO2 and X2O3, wherein Y is a tetravalent element, and X is a trivalent element; (ii) subjecting the one or more zeolitic materials provided in step (i) to a procedure for removing at least a portion of X, preferably tetrahedrally coordinated X, from the BEA framework structure; wherein the Y:X molar ratios of the one or more zeolitic materials provided in step (i) are respectively comprised in the range of from 1 to 50.
Abstract translation:本发明涉及一种制备具有BEA骨架结构的沸石材料的方法,包括以下步骤:(i)提供一种或多种具有BEA骨架结构的沸石材料,其中BEA骨架结构包含YO 2和X 2 O 3,其中 Y是四价元素,X是三价元素; (ii)使步骤(i)中提供的一种或多种沸石材料从BEA骨架结构中除去至少一部分X,优选四面体配位的X的步骤; 其中步骤(i)中提供的一种或多种沸石材料的Y:X摩尔比分别在1至50的范围内。
Abstract:
The present invention relates to a process for preparing a porous metal-organic framework comprising at least one at least bidentate organic compound coordinated to at least one metal ion, where the at least one metal ion is based on an aluminum ion and the at least one at least bidentate organic compound is based on fumaric acid, by reacting at least one aluminum compound with at least fumaric acid in an alkaline aqueous medium, optionally in the presence of at least one base, at a temperature in the range from 20° C. to 100° C. at an absolute pressure of not more than 2 bar for from 0.2 to 4 hours.
Abstract:
The present invention relates to a process for preparing a magnesium formate-based porous metal-organic framework, which comprises the steps (a) addition of magnesium or magnesium oxide to formic acid; (b) stirring of the reaction mixture at at least 75° C.; (c) isolation of the solid from the resulting suspension by filtration.
Abstract:
The invention relates to a handle unit (10) to trigger the function of a lock (19) for opening and/or for closing a moving part (42), in particular a door, a tailgate or similar of a motor vehicle (40), with one electronic unit (20, 20′) and one actuating element, wherein the electronic unit (20, 20′) is used for data communication with a vehicle part, in particular with a security system; the actuating element monitors an actuation zone (60) and a signal is triggered by means of the actuating element by a movement of an object (100) within the actuation zone (60). The invention provides that the actuating element optically monitors the actuation zone (60) so that the detection of a specified motion pattern (30) due to movement of the object (100) will cause a triggering of the signal.
Abstract:
The present invention relates to a process for preparing a porous metal organic framework comprising at least two organic compounds coordinated to at least one metal ion, which comprises the steps (a) oxidation of at least one anode comprising the metal corresponding to at least one metal ion in a reaction medium in the presence of at least one first organic compound which is an optionally substituted monocyclic, bicyclic or polycyclic saturated or unsaturated hydrocarbon in which at least two ring carbons have been replaced by heteroatoms selected from the group consisting of N, O and S to form a reaction intermediate comprising the at least one metal ion and the first organic compound; and (b) reaction of the reaction intermediate at a prescribed temperature with at least one second organic compound which coordinates to the at least one metal ion, with the second organic compound being derived from a dicarboxylic, tricarboxylic or tetracarboxylic acid.
Abstract:
The invention is directed to a method for manufacturing a sandwich like constructed light weight sheet with sound absorption characteristics, by which an acoustically absorbing cover layer, a substantially grid shape configured first intermediate layer and a bottom layer are bound together, wherein the light weight sheet has a defined surface.
Abstract:
Molding compositions comprising at least one styrene polymer and comprising at least one zeolitic material of MFI structure type, a process for removal of styrene monomer from styrene polymer, and the use of at least one zeoltic material of MFI structure type for removal of styrene monomer from a molding composition comprising styrene polymer.
Abstract:
The present invention relates to a porous metal-organic framework material comprising at least one at least bidentate organic compound which is bound to at least one metal ion by coordination, the at least one metal ion being zirconium, and the at least one at least bidentate organic compound being derived from a dicarboxylic, tricarboxylic or tetracarboxylic acid. In addition, the invention relates to methods for production thereof and also use thereof.
Abstract:
Processes comprising: (i) providing an anode comprising zinc; and (ii) oxidizing the anode in a reaction medium in the presence of at least one organic compound to form a porous metal organic framework comprising the least one organic compound coordinated to at least one zinc ion; wherein the at least one organic compound comprises a ring system selected from the group consisting of compounds corresponding to the following structures wherein the ring system optionally bears one or more substituents selected independently from the group consisting of halogens, C1-6-alkyls, phenyl, NH2, NH(C1-6-alkyls), N(C1-6-alkyls)2, OH, O-phenyl and O—C1-6-alkyls, and wherein each C1-6-alkyl and phenyl substituent may independently and optionally bear one or more substituents selected independently from the group consisting of halogens, NH2, NH(C1-6-alkyls), N(C1-6-alkyls)2, OH, O-phenyl and O—C1-6-alkyls.
Abstract:
An aluminum oxide particle mixture for reflection layers in discharge lamps, and to discharge lamps of this type. The mixture has a first coarse-grained component and a second fine-grained component, with a primary grain size of preferably d50(1) between 0.3 μm and 0.5 μm and d50(2) of at most 0.05 μm, respectively (with an agglomerated size of the fine particles of less than 0.15 μm).