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Methodological assessment of kinetic Monte Carlo simulations of organic photovoltaic devices: The treatment of electrostatic interactions

机译:有机光伏器件动力学蒙特卡洛模拟的方法学评估:静电相互作用的处理

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摘要

The kinetic Monte Carlo (KMC) method provides a versatile tool to investigate the mechanisms underlying photocurrent generation in nanostructured organic solar cells. Currently available algorithms can already support the development of more cost-efficient photovoltaic devices, but so far no attempt has been made to test the validity of some fundamental model assumptions and their impact on the simulation result. A meaningful example is given by the treatment of the electrostatic interactions. In most KMC models, electrostatic interactions are approximated by means of cutoff based potentials, irrespective of the long-range nature of the Coulomb interaction. In this paper, the reliability of such approximation is tested against the exact Ewald sum. The results under short-circuit and flat-band conditions show that use of cutoff-based potentials tends to underestimate real device performance, in terms of internal quantum efficiency and current density. Together with this important finding, we formalize other methodological aspects which have been scarcely discussed in the literature. © 2010 American Institute of Physics Article Outline INTRODUCTION ELECTROSTATICS IN AN INFINITE SLAB DEVICE METHODOLOGY OF KINETIC MONTE CARLO SIMULATIONS MATERIAL AND SIMULATION PARAMETERS RESULTS AND DISCUSSION CONCLUSIONS
机译:动力学蒙特卡洛(KMC)方法为研究纳米结构有机太阳能电池中光电流产生的机理提供了一种多功能的工具。当前可用的算法已经可以支持开发更具成本效益的光伏设备,但是到目前为止,尚未尝试测试某些基本模型假设的有效性及其对模拟结果的影响。通过静电相互作用的处理给出了一个有意义的例子。在大多数KMC模型中,静电相互作用是通过基于截止的电势来近似的,而与库仑相互作用的远距离性质无关。在本文中,针对精确的Ewald和检验了这种近似的可靠性。在短路和平坦频带条件下的结果表明,就内部量子效率和电流密度而言,使用基于截止的电势往往会低估实际的器件性能。连同这一重要发现,我们将文献中很少讨论的其他方法论方面进行了形式化。 ©2010美国物理研究所文章概述无限平板装置中的静电学动力学蒙特卡罗模拟的方法论材料和模拟参数结果和讨论的结论

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  • 来源
    《Journal of Chemical Physics》 |2010年第9期|p.1-14|共14页
  • 作者单位

    Dipartimento di Chimica, Materiali e Ingegneria Chimica ”G. Natta,” Politecnico di Milano, Via L. Mancinelli 7, Milano 20131, Italy;

    Dipartimento di Chimica, Materiali e Ingegneria Chimica ”G. Natta,” Politecnico di Milano, Via L. Mancinelli 7, Milano 20131, Italy;

    Research Center for Non-Conventional Energies, Istituto ENI Donegani, Eni S.p.A, Via G. Fauser 4, Novara 28100, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    current density; Monte Carlo methods; nanostructured materials; solar cells;

    机译:电流密度蒙特卡罗方法纳米结构材料太阳能电池;

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