Towards Improving the Efficiency of Organic Solar Cells by Coarse-Grained Atomistic Modeling of Processing Dependent Morphologies

Towards Improving the Efficiency of Organic Solar Cells by Coarse-Grained Atomistic Modeling of Processing Dependent Morphologies
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通过工艺相关形态的粗粒度原子模拟提高有机太阳能电池的效率

DOI:
10.1109/mcse.2021.3072626
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发表时间:
2021-05
影响因子:
2.1
通讯作者:
G. Balasubramanian;Joydeep Munshi;Wei Chen;T. Chien
G. Balasubramanian;Joydeep Munshi;Wei Chen;T. Chien
中科院分区:
计算机科学4区
文献类型:
--
作者:
G. Balasubramanian;Joydeep Munshi;Wei Chen;T. Chien

文献摘要

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使用有机半导体材料将太阳能转换为电能是一个复杂的过程,这是由于电子和光子的基本传输物理学。体异质结有机photopolics的3-D形态的实验表征是具有挑战性的,由于弱的电子散射的有机分子的重建形态的对比度差是通过电子显微镜的显微结构成像的主要障碍。因此,提高有机太阳能电池的功率转换效率(PCE)需要对材料和工艺参数进行预测性设计。为此,需要大规模的粗粒度分子模拟来探测纳米结构的形态,开发有助于基本理解物理机制的工艺-结构-性能相关性,并同时帮助选择和优化设计参数。在这里,我们总结了高性能粗粒度分子动力学模拟的结果,用于模拟典型的本体异质结太阳能电池有源层的溶剂蒸发和热退火。后者由电子给体和电子受体材料的混合物组成。我们广泛探索PCE的依赖性和不同的溶液加工条件下的共混物形态的热机械稳定性,并将确定的参数与主要的设计变量和微观结构。模拟结果表明,组成的供体和受体材料,各自的分子量,供体聚合物链的多分散性,和热退火温度的主要参数,显着影响的形态,热机械稳定性,并随后的PCE的有机光致发光。
Solar energy conversion to electricity using organic semiconductor materials is a complex process due to the underlying transport physics of electrons and photons. Experimental characterizations of the 3-D morphology of bulk heterojunction organic photovoltaics are challenging; the poor contrast of the reconstructed morphology due to weak electronic scattering of organic molecules is a major impediment for microstructural imaging by electron microscopy. Thus, enhancing the power-conversion efficiency (PCE) of organic solar cells requires predictive design of both material and processing parameters. To this end, large-scale coarse-grained molecular simulations are needed to probe the morphology of the nanostructures, to develop process–structure–performance correlations that assist in fundamental understanding of the physical mechanisms, and to simultaneously aid in selection and optimization of design parameters. Here, we summarize the outcomes from high-performance coarse-grained molecular dynamics simulations that are employed to mimic solvent evaporation and thermal annealing of typical bulk heterojunction solar cell active layers. The latter consist of a blend of electron-donor and electron-acceptor materials. We extensively explore the dependence of PCE and the thermo-mechanical stability of the blend morphology on different solution processing conditions, and correlate the identified parameters with the dominant design variables and the microstructure. The simulations reveal that the composition of constituent donor and acceptor materials, respective molecular weights, polydispersity of donor polymer chains, and the thermal annealing temperature are the major parameters that significantly impact the morphology, thermo-mechanical stability, and subsequently the PCE of organic photovoltaics.