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Crystal Engineering of NLO Materials Based on Metal−Organic Coordination Networks

Accounts of Chemical Research · 2002 · Vol. 35(7) · pp. 511–522
O.R. EvansWenbin Lin

Abstract

Crystal engineering, the ability to predict and control the packing of molecular building units in the solid state, has attracted much attention over the past three decades owing to its potential exploitation for the synthesis of technologically important materials. We present here the development of crystal-engineering strategies toward the synthesis of noncentrosymmetric infinite coordination networks for use as second-order nonlinear optical (NLO) materials. Work performed mainly in our laboratory has demonstrated that noncentrosymmetric solids based on infinite networks can be rationally synthesized by combining unsymmetrical bridging ligands and metal centers with well-defined coordination geometries. Specifically, coordination networks based on 3D diamondoid and 2D grid structures can be successfully engineered with a high degree of probability and predictability to crystallize in noncentrosymmetric space groups. We have also included noncentrosymmetric solids based on 1D chains and related helical structures for comparison.

Metal-Organic Frameworks: Synthesis and ApplicationsCrystal Structures and PropertiesCrystallography and molecular interactionsCrystal engineeringDiamondoidCoordination complexNonlinear opticalMaterials scienceCrystal structureMetalBridging (networking)Crystal (programming language)Crystallography
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References
A Powder Technique for the Evaluation of Nonlinear Optical Materials
Journal of Applied Physics · 1968 · 5,986 citations
The Role of Hydrothermal Synthesis in Preparative Chemistry
Angewandte Chemie International Edition in English · 1985 · 829 citations
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Crystal Engineering of NLO Materials Based on Metal−Organic Coordination Networks
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