Various Chemistry Research Topics
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Research papers
Advanced inorganic chemistry
For more than a quarter century, Cotton and Wilkinson's Advanced Inorganic Chemistry has been the source that students and professional chemists have turned to for the background needed to understand current research literature in inorganic chemistry and aspects of organometallic chemistry. Like its predecessors, this updated Sixth Edition is organized around the periodic table of elements and provides a systematic treatment of the chemistry of all chemical elements and their compounds. It incorporates important recent developments with an emphasis on advances in the interpretation of structure, bonding, and reactivity.From the reviews of the Fifth Edition:* The first place to go when seeking general information about the chemistry of a particular element, especially when up-to-date, authoritative information is desired. -Journal of the American Chemical Society.* Every student with a serious interest in inorganic chemistry should have [this book]. -Journal of Chemical Education.* A mine of information . . . an invaluable guide. -Nature.* The standard by which all other inorganic chemistry books are judged.-Nouveau Journal de Chimie.* A masterly overview of the chemistry of the elements.-The Times of London Higher Education Supplement.* A bonanza of information on important results and developments which could otherwise easily be overlooked in the general deluge of publications. -Angewandte Chemie.
Supramolecular Chemistry
Part 1 From molecular to supramolecular chemistry: concepts and language of supramolecular chemistry. Part 2 Molecular recognition: recognition, information, complementarity molecular receptors - design principles spherical recognition - cryptates of metal cations tetrahedral recognition by macrotricyclic cryptands recognition of ammonium ions and related substrates binding and recognition of neutral moelcules. Part 3 Anion co-ordination chemistry and the recognition of anionic substrates. Part 4 Coreceptor molecules and multiple recognition: dinuclear and polynuclear metal ion cryptates linear recognition of molecular length by ditopic coreceptors heterotopic coreceptors - cyclophane receptors, amphiphilic receptors, large molecular cage multiple recognition in metalloreceptors supramolecular dynamics. Part 5 Supramolecular reactivity and catalysis: catalysis by reactive macrocyclic cation receptor molecules catalysis by reactive anion receptor molecules catalysis with cyclophane type receptors supramolecular metallo-catalysis cocatalysis - catalysis of synthetic reactions biomolecular and abiotic catalysis. Part 6 Transport processes and carrier design: carrier-mediated transport cation-transport processes - cation carriers anion transport processes - anion carriers coupled transport processes electron-coupled transpoort in a redox gradient proton-coupled transport in a pH gradient light-coupled transport processes transfer via transmembrane channels. Part 7 From supermolecules to polymolecular assemblies: heterogeneous molecular recognition - supramolecular solid materials from endoreceptors to exoreceptors - molecular recognition at surfaces molecular and supramolecular morphogenesis supramolecular heterogeneous catalysis. Part 8 Molecular and supramolecular devices: molecular recognition, information and signals - semiochemistry supramolecular photochemistry - molecular and supramolecular photonic devices light conversion and energy transfer devices photosensitive molecular receptors photoinduced electron transfer in photoactive devices photoinduced reactions in supramolecular species non-linear optical properties of supramolecular species supramolecular effects in photochemical hole burning molecular and supramolecular electronic devices supramolecular electrochemistry electron conducting devices - molecular wires polarized molecular wires - rectifying devices modified and switchable molecular wires molecular magnetic devices molecular and supramolecular ionic devices tubular mesophases. (Part contents).
Encyclopedia of Analytical Chemistry
Correlation between light, mostly fluorescence, and electron microscopy (EM) is needed to identify biological molecules within their ultrastructural context and/or to relate the ultrastructure to preceding dynamics of biological molecules. Recent development of labels, sample preparation techniques, and microscopy tools allow researchers to bridge the gap between these two modalities, while dedicated, integrated microscopes merge the two techniques into one. This not only allows broader possibilities for implementation of CLEM (correlative light and electron microscopy) in analytical sciences but also enables novel applications crossing boundaries between the traditional microscopes. We provide an overview of the different CLEM approaches, including common labels and sample preparation techniques, and focus attention specifically on the advanced instrumentation and the novel opportunities and challenges these bring for the chemical and biological sciences.
Comprehensive supramolecular chemistry
Volume 1 - Molecular Recognition: Receptors for Cationic Guests. Volume 2 - Molecular Recognition: Receptors for Molecular Guests. Volume 3 - Cyclodextrins. Volume 4 - Supramolecular Reactivity and Transport: Bioorganic Systems. Volume 5 - Supramolecular Reactivity and Transport: Bioinorganic Systems. Volume 6 - Solid-State Supramolecular Chemistry: Crystal Engineering. Volume 7 - Solid-State Supramolecular Chemistry: Two- and Three-Dimensional Inorganic Networks. Volume 8 - Physical Methods in Supramolecular Chemistry. Volume 9 - Templating Self-Assembly and Self-Organization. Voulme 10 - Supramolecular Technology. Volume 11 - Cumulative Index.
Efficacious Form for Model Pseudopotentials
A simple way has been discovered to put model pseudopotentials, $V(\stackrel{\ensuremath{\rightarrow}}{\mathrm{r}})={\ensuremath{\Sigma}}_{\mathrm{lm}}|{Y}_{\mathrm{lm}}〉{V}_{l}(r)\ifmmode\times\else\texttimes\fi{}〈{Y}_{\mathrm{lm}}|$, into a form which reduces the number of integrals of $V(\stackrel{\ensuremath{\rightarrow}}{\mathrm{r}})$ required for an energyband calculation from $\frac{\mathrm{mn}(n+1)}{2}$ to $\mathrm{mn}$ for each $l$ in the sum (where $n$ is the number of plane waves used in the expansion and $m$ the number of points in the Brillouin zone at which the calculation is performed). The new form may be chosen to improve the accuracy of the pseudopotential when used in other chemical environments.
<i>Principles of Condensed Matter Physics</i>
Share Icon Share Twitter Facebook Reddit LinkedIn Reprints and Permissions Cite Icon Cite Search Site Citation Paul M. Chaikin, Thomas C. Lubensky, Thomas A. Witten; Principles of Condensed Matter Physics. Physics Today 1 November 1995; 48 (11): 82. https://doi.org/10.1063/1.2808258 Download citation file: Ris (Zotero) Reference Manager EasyBib Bookends Mendeley Papers EndNote RefWorks BibTex toolbar search Search Dropdown Menu toolbar search search input Search input auto suggest filter your search All ContentPhysics Today Search Advanced Search
Handbook of Chemistry and Physics
"Handbook of Chemistry and Physics." Nuclear Science and Engineering, 9(2), pp. 288–289