Computational Chemistry‐Guided Design of Selective Chemoresponsive Liquid Crystals Using Pyridine and Pyrimidine Functional Groups

Abstract

Computational chemistry‐guided designs of chemoresponsive liquid crystals (LCs) with pyridine or pyrimidine groups that bind to metal‐cation‐functionalized surfaces to provide improved selective responses to targeted vapor species (dimethylmethylphosphonate (DMMP)) over nontargeted species (water) are reported. The LC designs against experiments are tested by synthesizing 4‐(4‐pentyl‐phenyl)‐pyridine and 5‐(4‐pentyl‐phenyl)‐pyrimidine and quantifying LC responses to DMMP and water. Consistent with the computations, pyridine‐containing LCs bind to metal‐cation‐functionalized surfaces too strongly to permit a response to either DMMP or water whereas pyrimidine‐containing LCs undergo a surface‐driven orientational transition in response to DMMP without interference from water. The computation predictions are not strongly dependent on assumptions regarding the degree of coordination of the metal ions but are limited in their ability to predict LC responses when using cations with mostly empty d orbitals. Overall, this work identifies a promising new class of chemoresponsive LCs based on pyrimidine that exhibits enhanced tolerance to water, a result that is important because water is a ubiquitous and particularly challenging chemical interferent in chemical sensing strategies based on LCs. The work also provides further evidence of the transformative utility of computational chemistry methods to design LC materials that exhibit selective orientational responses in specific chemical environments.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jan 19, 2018
Source ID
10.1002/adfm.201703581

Entities

People

  • Huaizhe Yu
  • Manos Mavrikakis
  • Nicholas L Abbott
  • Prabin Rai
  • Robert J Twieg
  • Tibor Szilvási

Organizations

  • Army Research Office
  • Kent State University
  • National Science Foundation
  • United States Department of Energy
  • University of Wisconsin–Madison

Tags

Fields of Study

  • Chemistry

Readers

  • Analytical Chemistry
  • Quantum Chemistry
  • Structural Health Monitoring of Composite Structures.

Technology Areas

  • Space