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Microscopic cascading of second-order molecular nonlinearity: New design principles for enhancing third-order nonlinearity

  • University of Rochester

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

Herein, we develop a phenomenological model for microscopic cascading and substantiate it with ab initio calculations. It is shown that the concept of local microscopic cascading of a second-order nonlinearity can lead to a third-order nonlinearity, without introducing any new loss mechanisms that could limit the usefulness of our approach. This approach provides a new molecular design protocol, in which the current great successes achieved in producing molecules with extremely large secondorder nonlinearity can be used in a supra molecular organization in a preferred orientation to generate very large third-order response magnitudes. The results of density functional calculations for a well-known second-order molecule, (para)nitroaniline, show that a head-to-tail dimer configuration exhibits enhanced third-order nonlinearity, in agreement with the phenomenological model which suggests that such an arrangement will produce cascading due to local field effects.

Original languageEnglish
Pages (from-to)8713-8721
Number of pages9
JournalOptics Express
Volume18
Issue number8
DOIs
StatePublished - Apr 12 2010

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