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Titlebook: Organic Solid-State Reactions; Fumio Toda Book 2002 Springer Science+Business Media B.V. 2002 Migration.crystal.dynamics.molecule.pollutio

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J. Sivaguru,J. Shailaja,S. Uppili,K. Ponchot,A. Joy,N. Arunkumar,V. Ramamurthy of water “structure” on intermolecular interactions in aqueous solutions. It is worthy to mention at this point that Frank. recently suggested that the study of aqueous solutions in general (and one might include nonaqueous solutions) will likely increase our presently incomplete understanding of w
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tion, and sometimes hope of change are elements in these interventions. In our own individualistic society there is, historically, a good deal of ambivalence concerning expectations and sanctions in regard to harming others. It is generally accepted that an individual has choices; but if he wants to
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Solid-State Ionic Reactions,velopment of waste-free reactions, that is, solvent-free reactions, is more desirable. Although a variety of organic solid-state reactions have been investigated up to now, these are mostly photoreactions that involve radical intermediates or proceed via cyclo-additions [1]. Ionic reactions of organ
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Organic Photoreaction in the Solid State,elective reactions are required, achiral molecules should be arranged in a chiral form by using the chiral host molecules. Photoreaction of the chiral inclusion crystal gives an optically active product. In some cases, the enantioselective photoreaction proceeds in a single-crystal-to-single-crystal
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Achieving Enantio and Diastereoselectivities in Photoreactions Through the Use of a Confined Space,an now be synthesized as single enantiomers. Unfortunately, asymmetric photochemical reactions have not enjoyed the same level of success [2]. In the past, chiral solvents, chiral auxiliaries, circularly polarized light, and chiral sensitizers have been utilized to conduct enantioselective photoreac
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