...
首页> 外文期刊>Journal of theoretical & computational chemistry >Tuning the optoelectronic properties of Benzo Thiophene (BT-CIC) based non-fullerene acceptor organic solar cell
【24h】

Tuning the optoelectronic properties of Benzo Thiophene (BT-CIC) based non-fullerene acceptor organic solar cell

机译:基于苯并噻吩(BT-CIC)的非富勒烯受体有机太阳能电池的光电性能

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Organic solar cells have become a center of attention in the field of research and technology due to its remarkable features. In the current research work, we designed Benzo Thiophene (BT-CIC) based non-fullerene acceptor organic solar cell having A-D-A novel structure. The designed structures D1-D4 were derived from BT-CIC (non-fullerene acceptor) by replacing 2-(5,6-dichloro-2-methylene-3-oxo-2,3-dihydro-1H-inden-1-ylidene)acetonitrile of reference molecule R with different electron withdrawing end-capper acceptor moieties. The effect of end acceptor groups on absorption, energy level, charge transport, morphology, and photovoltaic properties of the designed molecules (D1-D4) were investigated by TD-DFT B3LYP/6-31G basic level of theory and compared with reference molecule R. Among all novel structures, D3 exhibited maximum absorption (lambda(max)) of 701.7nm and 755.2nm in gaseous state anfd chloroform, respectively. The red shift in D3 was due to the presence of strong electron withdrawing acceptor moiety and more extended conjugation as compared to other structures. D3 also displayed lowest values of energy bandgap (1.97 eV), lambda(e) (0.0063 eV) and lambda(h) (0.0099 eV) and which signify its ease electron mobility. Lowest value of binding energy 1.20 eV of D3 suggested that this molecule could be easily dissociated into charge carriers TDM results revealed that easy exciton dissociation occurred in D3. Overall, designed structure D3 was found to be more effective and efficient acceptor molecule for SMOSCs. The findings provide novel information for the development of non-fullerene acceptors for OPVs.
机译:由于其显着特征,有机太阳能电池已成为研究和技术领域的关注的中心。在目前的研究工作中,我们设计了基于苯并噻吩(BT-CIC)的非富勒烯受体有机太阳能太阳能电池,具有A-D-A新颖的结构。设计的结构D1-D4通过替换2-(5,6-二氯-2-亚甲基-3-氧代-2,3-二氢-1H- Inden-1- ylidene )参考分子r的乙腈,具有不同的电子提取端螺栓受体部分。通过TD-DFT B3LYP / 6-31G基本理论研究,对设计分子(D1-D4)的吸收,能级,电荷输送,形态和光伏性能进行了效果,并与参考分子R进行了比较。在所有新颖结构中,D3分别在气态ANFD氯仿中表现出701.7nm和755.2nm的最大吸收(Lambda(Max))。与其他结构相比,D3中的红色移位是由于存在强电子抽吸受体部分和更扩展的缀合。 D3还显示了能量带隙(1.97eV),λ(E)(0.0063eV)和λ(0.0099eV)的最低值,并表示其简化电子迁移率。结合能量的最低值1.20的D3表明该分子可以容易地解离料载体TDM结果显示,在D3中发生了易于激子解离。总体而言,设计设计的结构D3是更有效和有效的受体分子用于SMOSCS。该调查结果为OPVS开发非全富勒烯受体提供了新颖的信息。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号