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首页> 外文期刊>Journal of molecular modeling >Molecular designing of four high performance pyrazine-based non-fullerene acceptor materials with naphthalene diimide-based small organic solar cells
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Molecular designing of four high performance pyrazine-based non-fullerene acceptor materials with naphthalene diimide-based small organic solar cells

机译:四种高性能吡嗪基非富勒烯受体材料与萘二酰亚胺小有机太阳能电池的分子设计

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摘要

We design four high performance non-fullerene acceptor materials by applying strong electron withdrawing groups at the end of A-D-A-D-A type organic solar cells molecules and compute their different opto-electronic and photovoltaic properties, including absorption spectrum, electron density, solubility strength, charge mobilities for electrons and holes, stability of HOMO/LUMO energy orbitals, excitation energies required for charge transfer mechanisms, and morphology of device with the help of DFT approaches using the principles of quantum mechanics. The newly designed molecules showed strong absorption bands between 420 to 650nm, low HOMO energy values from -7.24 to -7.28eV, large % ETC from 35 to 65%, and small excitation energies from 2.28 to 2.47eV in the organic solvent chloroform; 410 to 620nm, 31 to 64%, and 2.42 to 2.56eV, respectively, in gas phase conditions. Solubility strengths of the newly designed molecules were also high, varying from 5.3039 to 18.4749 Debye in the ground and excited states. Power conversion efficiencies of the designed molecules are expected to be high because they show better results than the R molecule. Open circuit voltages of designed molecules range from 3.67 to 3.54V with respect to the PCBM. Reorganization energies for electron transport vary from 0.0153 to 0.0175eV and for hole transport from 0.0231 to 0.0254eV. This computational study proves that the newly designed molecules with non-fullerene acceptors are superior and thus are recommended for the future construction of high performance organic solar cells devices.
机译:我们通过在Adada型有机太阳能电池分子结束时应用强电子取出组来设计四种高性能的非富勒烯受体材料,并计算其不同的光电和光伏性能,包括吸收光谱,电子密度,溶解度强度,电荷迁移率电子和孔,Homo / Lumo能量轨道的稳定性,电荷转移机构所需的励磁能量,以及使用量子力学原理的DFT方法的设备形态。新设计的分子在-7.24至-7.28重量-7.24至-7.28ev,大量等的420至650nm之间,低于35%至65%的强度,大量的溶剂在有机溶剂氯仿中为2.28至2.47ev;在气相条件下分别为410至620nm,31至64%和2.42至2.56EV。新设计的分子的溶解度强度也很高,从地面和激发态的5.3039到18.4749德英不同。预计设计分子的功率转换效率将很高,因为它们显示出比R分子更好的结果。设计分子的开路电压范围为3.67至3.54V,相对于PCBM。电子运输的重组能量从0.0153到0.0175EV和0.0231至0.0254EV的空穴运输变化。该计算研究证明,新设计的具有非富勒烯受体的分子是优越的,因此建议未来为未来的高性能有机太阳能电池装置的构造。

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