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High solids, future possibilities

The mechanism of ion polymerization in formaldehyde crystals proposed by Basilevskii et al. [1982] rests on Semenov s [1960] assumption that solid-phase chain reactions are possible when the arrangement of the reactants in the crystal prepares the configuration of the future chain. The monomer crystals capable of low-temperature polymerization fulfill this condition. In the initial equilibrium state the monomer molecules are located in the lattice sites and the creation of a chemical bond requires surmounting a high barrier. However, upon creation of the primary dimer cation, the active center shifts to the intersite, and the barrier for the addition of the next link... [Pg.129]

In the near future, the possible synthesis of nanotubes with solid-gas potential will be more favorable to adsorption. The effect of hydrogen overpressure on the stability of adsorbed Ha needs to be verified in the near future. The high-purity nanotube produced by laser vaporization, catalytic decomposition, or other techniques should be investigated. It is noteworthy that the synthesis of the SWNT with defined diameters and distances between the walls is difficult to perform at present, but future synthesis routes will allow more... [Pg.205]

Enantioselective photoreactions in the solid state have many advantages as described in Section I. As reviewed in this chapter, highly enantioselective photoreactions can be accomplished in the solid state without using any chiral source. There are hopeful possibilities to find many other examples of similar absolute asymmetric photosynthesis in the solid state. Enantioselective photosynthesis in inclusion complex crystal with a chiral host compound will also be a new general method of asymmetric synthesis in future. By successful designing of many new chiral host compounds, the research field would also be developed widely. [Pg.423]


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Future Possibilities

High solids, future

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