Review on the DFT computation of bulk heterojunction and dye-sensitized organic solar cell properties

IF 2.1 4区 化学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Nathália M. P. Rosa, Itamar Borges Jr.
{"title":"Review on the DFT computation of bulk heterojunction and dye-sensitized organic solar cell properties","authors":"Nathália M. P. Rosa,&nbsp;Itamar Borges Jr.","doi":"10.1007/s00894-025-06304-z","DOIUrl":null,"url":null,"abstract":"<div><h3>Context</h3><p>Organic solar cells (OSCs) represent a promising renewable energy technology due to their flexibility, low production cost, and environmental sustainability. To advance OSC efficiency and stability, density functional theory (DFT) has emerged as a powerful computational tool, enabling the prediction and optimization of critical properties at the molecular and device levels. This review highlights the key properties of bulk heterojunction solar (BHJ) solar cells and dye-sensitized solar cells (DSSCs) that can be accurately computed using DFT, including <i>electronic structure properties</i> (HOMO–LUMO energy levels, bandgap energies, and exciton binding energies, which influence charge separation and transport); <i>optical properties</i> (absorption spectra and light-harvesting efficiency, essential for maximizing photon capture); <i>charge transport properties</i> (reorganization energies, electron, and hole mobilities, and charge transfer rates that govern carrier dynamics within devices); <i>interfacial properties</i> (energy alignment at donor–acceptor interfaces, contributing to efficient charge separation and minimizing recombination); and <i>chemical reactivity descriptors</i> (ionization potential, electron affinity, chemical hardness, and electrophilicity, which facilitate material screening for OSC applications). We also show how to compute OSCs’ power conversion efficiency (PCE) from DFT.</p><h3>Methods</h3><p>The review also discusses the importance of selecting appropriate exchange–correlation functionals and basis sets to ensure the accuracy of DFT predictions. By providing reliable computational insights, DFT accelerates the rational design of OSC materials, guides experimental efforts, and reduces resource demands. This work underscores DFT’s pivotal role in optimizing OSC performance and fostering the development of next-generation photovoltaic technologies.</p></div>","PeriodicalId":651,"journal":{"name":"Journal of Molecular Modeling","volume":"31 3","pages":""},"PeriodicalIF":2.1000,"publicationDate":"2025-02-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Molecular Modeling","FirstCategoryId":"92","ListUrlMain":"https://link.springer.com/article/10.1007/s00894-025-06304-z","RegionNum":4,"RegionCategory":"化学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"BIOCHEMISTRY & MOLECULAR BIOLOGY","Score":null,"Total":0}
引用次数: 0

Abstract

Context

Organic solar cells (OSCs) represent a promising renewable energy technology due to their flexibility, low production cost, and environmental sustainability. To advance OSC efficiency and stability, density functional theory (DFT) has emerged as a powerful computational tool, enabling the prediction and optimization of critical properties at the molecular and device levels. This review highlights the key properties of bulk heterojunction solar (BHJ) solar cells and dye-sensitized solar cells (DSSCs) that can be accurately computed using DFT, including electronic structure properties (HOMO–LUMO energy levels, bandgap energies, and exciton binding energies, which influence charge separation and transport); optical properties (absorption spectra and light-harvesting efficiency, essential for maximizing photon capture); charge transport properties (reorganization energies, electron, and hole mobilities, and charge transfer rates that govern carrier dynamics within devices); interfacial properties (energy alignment at donor–acceptor interfaces, contributing to efficient charge separation and minimizing recombination); and chemical reactivity descriptors (ionization potential, electron affinity, chemical hardness, and electrophilicity, which facilitate material screening for OSC applications). We also show how to compute OSCs’ power conversion efficiency (PCE) from DFT.

Methods

The review also discusses the importance of selecting appropriate exchange–correlation functionals and basis sets to ensure the accuracy of DFT predictions. By providing reliable computational insights, DFT accelerates the rational design of OSC materials, guides experimental efforts, and reduces resource demands. This work underscores DFT’s pivotal role in optimizing OSC performance and fostering the development of next-generation photovoltaic technologies.

块状异质结和染料敏化有机太阳能电池特性的 DFT 计算综述
有机太阳能电池(OSCs)由于其灵活性、低生产成本和环境可持续性,代表了一种有前途的可再生能源技术。为了提高OSC的效率和稳定性,密度泛函理论(DFT)已经成为一种强大的计算工具,可以在分子和器件水平上预测和优化关键性质。本文综述了体异质结太阳能电池(BHJ)和染料敏化太阳能电池(DSSCs)的关键特性,包括电子结构特性(影响电荷分离和输运的HOMO-LUMO能级、带隙能和激子结合能);光学特性(吸收光谱和光捕获效率,对于最大限度地捕获光子至关重要);电荷传输特性(重组能、电子和空穴迁移率以及控制器件内载流子动力学的电荷转移速率);界面特性(供体-受体界面的能量排列,有助于有效的电荷分离和最小化重组);以及化学反应性描述符(电离势、电子亲和性、化学硬度和亲电性,这有助于OSC应用的材料筛选)。我们还展示了如何从DFT计算OSCs的功率转换效率(PCE)。方法讨论了选择合适的交换相关函数和基集对保证DFT预测精度的重要性。通过提供可靠的计算见解,DFT加速了OSC材料的合理设计,指导了实验工作,并减少了资源需求。这项工作强调了DFT在优化OSC性能和促进下一代光伏技术发展方面的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
求助全文
约1分钟内获得全文 求助全文
来源期刊
Journal of Molecular Modeling
Journal of Molecular Modeling 化学-化学综合
CiteScore
3.50
自引率
4.50%
发文量
362
审稿时长
2.9 months
期刊介绍: The Journal of Molecular Modeling focuses on "hardcore" modeling, publishing high-quality research and reports. Founded in 1995 as a purely electronic journal, it has adapted its format to include a full-color print edition, and adjusted its aims and scope fit the fast-changing field of molecular modeling, with a particular focus on three-dimensional modeling. Today, the journal covers all aspects of molecular modeling including life science modeling; materials modeling; new methods; and computational chemistry. Topics include computer-aided molecular design; rational drug design, de novo ligand design, receptor modeling and docking; cheminformatics, data analysis, visualization and mining; computational medicinal chemistry; homology modeling; simulation of peptides, DNA and other biopolymers; quantitative structure-activity relationships (QSAR) and ADME-modeling; modeling of biological reaction mechanisms; and combined experimental and computational studies in which calculations play a major role.
×
引用
GB/T 7714-2015
复制
MLA
复制
APA
复制
导出至
BibTeX EndNote RefMan NoteFirst NoteExpress
×
提示
您的信息不完整,为了账户安全,请先补充。
现在去补充
×
提示
您因"违规操作"
具体请查看互助需知
我知道了
×
提示
确定
请完成安全验证×
copy
已复制链接
快去分享给好友吧!
我知道了
右上角分享
点击右上角分享
0
联系我们:info@booksci.cn Book学术提供免费学术资源搜索服务,方便国内外学者检索中英文文献。致力于提供最便捷和优质的服务体验。 Copyright © 2023 布克学术 All rights reserved.
京ICP备2023020795号-1
ghs 京公网安备 11010802042870号
Book学术文献互助
Book学术文献互助群
群 号:481959085
Book学术官方微信