Abstract
Self-assembled L,L-diphenylalanine (FF) nanostructures offer an attractive platform for photonics and nonlinear optics. The nonlinear optical (NLO) coefficients of FF nanotubes depend on the diameter of the tube [S. Khanra et al. Phys. Chem. Chem. Phys. 19(4), 3084–3093 (2017)]. To further enhance the NLO properties of FF, we search for structural modifications. Here, we report on the synthesis of fluorinated FF dipeptides by replacing one ortho-hydrogen atom in each of the phenyl groups of FF by a fluorine atom. Density-functional theoretical calculations yield insights into minimum energy conformers of fluorinated FF (Fl-FF). Fl-FF self-assembles akin to FF into micron-length tubes. The effects of fluorination are evaluated on the piezoelectric response and nonlinear optical properties. The piezoelectric d15 coefficient of Fl-FF is found to be more than 10 times higher than that of FF nanotubes, and the intensity of second harmonic generation (SHG) polarimetry from individual Fl-FF nanotubes is more than 20 times that of individual FF nanotubes. Furthermore, we obtain SHG images to compare the intensities of FF and Fl-FF tubes. This work demonstrates the potential of fluorine substitution in other self-assembled biomimetic peptides for enhancing nonlinear optical response and piezoelectricity.
Highlights
Nonlinear optical (NLO) phenomena are fundamental to important technological tools in optoelectronics
We report here on the design and synthesis of a fluorinated derivative Fl-FF which is informed by the analysis of the superstructure of FF
Detailed Second harmonic generation (SHG) polarimetry from FF nanotubes was conducted in Ref. 9, which forms the basis for a comparison of the nonlinear optical properties of FF and Fl-FF nanotubes
Summary
Nonlinear optical (NLO) phenomena are fundamental to important technological tools in optoelectronics. Published Online: 12 November 2019 Soma Khanra, Sandra V. Enhanced piezoresponse and nonlinear optical properties of fluorinated self-assembled peptide nanotubes
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