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Albert W Marsman

Publications and source records attributed to Albert W Marsman.

2 recordsLinked to original sources

4-(Tetrahydro-4H-thiopyran-1-oxide-4-ylidene)-cyclohexanone oxime in the solid-state. A two-dimensional network of enantiomorphous chains interconnected by weak hydrogen bonds.

From a saturated C6H6 solution of racemic 4-(tetrahydro-4H-thiopyran-1-oxide-4-ylidene)-cyclohexanone oxime [1(1-R/1-S)] the co-crystal is crystallized. Single crystal X-ray analysis showed that (1)4.C6H6 (P1 space group) in the solid-state consists of enantiomorphous, non-covalent polymer-like chains that contain, in an alternating fashion, the crystallographically independent enantiomers 1-R and 1-R' or 1-S and 1-S'', respectively. Within each chain the enantiomers are linked by 'head-to-tail' intermolecular oxime-sulfoxide hydrogen bonding [D(2) motif]. Neighbouring chains consist of enantiomers with opposite configuration and possess opposite molecular 'head-to-tail' alignments. The enantiomorphous chains are interconnected by weak intermolecular C-HO hydrogen bonds involving centrosymmetric C-Hoxime [R(12)] and C-Hsulfoxide [R(8)] motifs between the 1-R and 1-S molecules in neighbouring chains; a nearly planar two-dimensional hydrogen bonding network motif is obtained. In the crystallographic direction [1 0 0] the layers stack in such a fashion that chains occupying successive layers with an identical 'head-to-tail' alignment are positioned on top of each other. Concomitantly, channels with areas of ca. 25 Angstroms(2) are obtained, which are occupied by C6H6 solvent molecules. A comparison of the IR and Raman spectra of with those obtained for native 1 that does not contain C6H6, indicates that intermolecular oxime-sulfoxide hydrogen bonding [D(2) motif] also occurs for native 1 in the solid-state.

Journal Article↗

Flexible active-matrix displays and shift registers based on solution-processed organic transistors.

At present, flexible displays are an important focus of research. Further development of large, flexible displays requires a cost-effective manufacturing process for the active-matrix backplane, which contains one transistor per pixel. One way to further reduce costs is to integrate (part of) the display drive circuitry, such as row shift registers, directly on the display substrate. Here, we demonstrate flexible active-matrix monochrome electrophoretic displays based on solution-processed organic transistors on 25-microm-thick polyimide substrates. The displays can be bent to a radius of 1 cm without significant loss in performance. Using the same process flow we prepared row shift registers. With 1,888 transistors, these are the largest organic integrated circuits reported to date. More importantly, the operating frequency of 5 kHz is sufficiently high to allow integration with the display operating at video speed. This work therefore represents a major step towards 'system-on-plastic'.

Biocompatible Materials↗