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Theoretical investigations on fluorinated and cyano copolymers for improvements of photovoltaic performances

机译:含氟和氰基共聚物改善光伏性能的理论研究

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An effective way to improve the efficiency of organic solar cells is to adjust the electron-withdrawing strength in donor-acceptor (D-A) copolymers. To achieve this goal, starting from previously reported polymers (PCPDT-BT and PDTPr-FBT) which are based on benzothiadiazole (BT) electron-deficient unit connected to each of two electron-rich units (cyclopentadithiophene (CPDT) and dithienopyrrole (DTPr)), we introduced two strong electron-withdrawing fluorine atoms or a cyano group on the BT unit to replace BT with fluorinated BT (FBT) and cyano BT (CNBT) in PCPDT-BT and PDTPr-FBT, respectively, and designed two types of D-A copolymers with different electron-withdrawing strengths. From the calculated results, the introduction of strong electron-withdrawing groups onto the copolymer can not only obviously reduce the HOMO and LUMO level of molecules, which results in increasing the open circuit voltage (V_(oc)) in solar cells, but can also enhance light-absorbing efficiency and charge transport ability of polymers. In the meantime, the cyano copolymers of PCPDT-1CNBT and PDTPr-lCNBT show the best performances with the smallest band gaps, lowest HOMO energy levels, the highest V_(oc), and the largest hole mobility (3.67 × 10~(-3) cm~2 V~(-1) s~(-1) and 8.05 × 10~(-4) cm~2 V~(-1) s~(-1), respectively) among all the considered systems. The power conversion efficiencies (PCEs) of ~7.2% and ~6.8% for organic solar cell made of designed polymers (PCPDT-1CNBT and PDTPr-lCNBT) are predicted by Scharber models. We presented several polymer donors for comparison of how the strong electron-withdrawing group influences the electronic properties and optical absorption of the polymers and the performances of organic solar cells made of the polymers, thereby obtaining promising organic solar cells with high power conversion efficiencies.
机译:改善有机太阳能电池效率的有效方法是调节供体-受体(D-A)共聚物中的电子吸收强度。为了实现这一目标,从先前报道的聚合物(PCPDT-BT和PDTPr-FBT)开始,它们基于与两个富电子单元(环戊二噻吩(CPDT)和二噻吩并吡咯(DTPr)中的每一个连接的苯并噻二唑(BT)缺电子单元),我们在BT单元上引入了两个强吸电子氟原子或氰基,分别用PCPDT-BT和PDTPr-FBT中的氟化BT(FBT)和氰基BT(CNBT)代替BT,并设计了两种具有不同吸电子强度的DA共聚物。根据计算结果,将强吸电子基团引入共聚物中不仅可以明显降低分子的HOMO和LUMO能级,从而导致太阳能电池的开路电压(V_(oc))增加,而且还可以提高聚合物的光吸收效率和电荷传输能力。同时,PCPDT-1CNBT和PDTPr-1CNBT的氰基共聚物表现出最佳性能,带隙最小,HOMO能级最低,V_(oc)最高,空穴迁移率最大(3.67×10〜(-3 )cm〜2 V〜(-1)s〜(-1)和8.05×10〜(-4)cm〜2 V〜(-1)s〜(-1))。 Scharber模型预测,由设计聚合物(PCPDT-1CNBT和PDTPr-1CNBT)制成的有机太阳能电池的功率转换效率(PCE)为〜7.2%和〜6.8%。我们提出了几种聚合物供体,用于比较强吸电子基团如何影响聚合物的电子性能和光吸收以及由聚合物制成的有机太阳能电池的性能,从而获得具有高功率转换效率的有前途的有机太阳能电池。

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