Khan Muhammad Usman, Hussain Shabbir, Asghar Muhammad Adnan, Munawar Khurram Shahzad, Khera Rasheed Ahmad, Imran Muhammad, Ibrahim Mohamed M, Hessien Mahmoud M, Mersal Gaber A M
Department of Chemistry, University of Okara, Okara 56300, Pakistan.
Department of Chemistry, Khwaja Fareed University of Engineering & Information Technology, Rahim Yar Khan 64200, Pakistan.
ACS Omega. 2022 May 18;7(21):18027-18040. doi: 10.1021/acsomega.2c01474. eCollection 2022 May 31.
Organic compounds having significant nonlinear optical (NLO) applications are being employed in the optoelectronics field. In the current work, a series of non-fullerene acceptor (NFA) based compounds are designed by modifying the acceptors with different substituents using as a reference compound. To study the NLO responses to the tuning of various acceptors, DFT and TD-DFT based parameters were calculated at the M06 level along with the 6-31G(d,p) basis set. The designed compounds (-) showed smaller values of the energy gap in comparison to the reference compound. The energy gaps of the title compounds were linked to global reactivity insights; provided a lower band gap, with smaller and larger quantities for hardness and softness characteristics, respectively. Further, UV-vis analyses were performed for all of the designed compounds, displaying wavelengths red-shifted from that of The intraelectron transfer (ICT) process and stability of the title compounds were explored via frontier molecular orbital (FMO) and natural bond orbital (NBO) studies, respectively. Out of all the designed compounds, the highest value of linear polarizability ⟨α⟩ of 3.485 × 10 esu, first hyperpolarizability (β) of 13.44 × 10 esu and second-order hyperpolarizability ⟨γ⟩ of 3.66 × 10 esu were exhibited by . In short, all of the designed compounds exhibited promising NLO properties because of their low charge transport resistance. These NLO properties may be useful for experimental researchers to uncover NLO materials for modern applications.
具有重要非线性光学(NLO)应用的有机化合物正被应用于光电子领域。在当前工作中,以 为参考化合物,通过用不同取代基修饰受体来设计一系列基于非富勒烯受体(NFA)的化合物。为了研究对各种受体调谐的 NLO 响应,在 M06 水平以及 6 - 31G(d,p)基组下计算基于密度泛函理论(DFT)和含时密度泛函理论(TD - DFT)的参数。与参考化合物相比,所设计的化合物(-)显示出较小的能隙值。标题化合物的能隙与全局反应性见解相关联; 提供了较低的带隙,其硬度和软度特征的量分别较小和较大。此外,对所有设计的化合物进行了紫外 - 可见分析,显示波长相对于 发生红移。通过前沿分子轨道(FMO)和自然键轨道(NBO)研究分别探索了标题化合物的电子内转移(ICT)过程和稳定性。在所有设计的化合物中, 表现出最高的线性极化率⟨α⟩值为 3.485×10 esu,第一超极化率(β)为 13.44×10 esu,二阶超极化率⟨γ⟩为 3.66×10 esu。简而言之,所有设计的化合物由于其低电荷传输电阻而表现出有前景的 NLO 性质。这些 NLO 性质可能有助于实验研究人员发现用于现代应用的 NLO 材料。