Issue 42, 2024

Optimal balance: alkali metal-doped boron carbide nanosheets achieve superior stability and nonlinear optical responsiveness

Abstract

Nonlinear optical (NLO) materials play a vital role in various technological domains, including optoelectronics and photonic devices. Designing NLO materials, particularly inorganic ones, that strike a compromise between nonlinear optical sensitivity and stability has always been a difficult task. In order to improve the stability and NLO responsiveness, we propose and examine alkali metal-doped boron carbide nanosheets (M@BCNs) in this study. Calculated interaction energies (Eint), which span from −65.5 to −94.9 kcal mol−1, show the stability of the M@BCN complexes. The first hyperpolarizability value has also increased, to a maximum of 3.11 × 105 au, indicating improved nonlinear optical characteristics. QTAIM (quantum theory of atoms in molecules) and NCI (non-covalent interactions) analyses demonstrate the validity of the interactions. According to NBO (natural bond orbital) analysis, the alkali metals gain almost +1 charge. Due to the low transition energies and considerable charge transfer between the alkali metals and nanosheet, the nonlinear optical response is significantly improved. The M@BCN complexes also show transparency in the ultraviolet region, with absorption maxima ranging from 917 to 2788 nm. This study proposes a viable approach for developing alkali metal-doped boron carbide nanosheets with improved NLO response and stability.

Graphical abstract: Optimal balance: alkali metal-doped boron carbide nanosheets achieve superior stability and nonlinear optical responsiveness

Supplementary files

Article information

Article type
Paper
Submitted
26 May 2024
Accepted
17 Sep 2024
First published
30 Sep 2024
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2024,14, 31021-31035

Optimal balance: alkali metal-doped boron carbide nanosheets achieve superior stability and nonlinear optical responsiveness

J. Yaqoob, H. AlMohamadi, A. L. Khan, M. Yasin, T. Mahmood, K. Ayub, F. Anwar, K. S. Joya and M. A. Gilani, RSC Adv., 2024, 14, 31021 DOI: 10.1039/D4RA03882G

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