J. Islah, E. Darkaoui, A. Abbassi, S. Taj, B. Manaut, H. Ez-Zahraouy
{"title":"生态友好型\\(CsGeCl_{3-n}F_n\\)卤化物钙钛矿太阳能电池应用的稳定性、光伏和光电子特性:来自DFT计算的见解","authors":"J. Islah, E. Darkaoui, A. Abbassi, S. Taj, B. Manaut, H. Ez-Zahraouy","doi":"10.1140/epjb/s10051-025-00895-5","DOIUrl":null,"url":null,"abstract":"<p>This study explores the characteristics of fluorine-substituted lead-free halide perovskites <span>\\(CsGeCl_{3-n}F_n\\)</span> for clean energy applications, focusing on their structural, stability, and optoelectronic characteristics. Density functional theory (DFT) calculations, using Quantum Espresso code (QE), were performed to assess the material performance of the <span>\\(CsGeCl_{3-n}F_n\\)</span> series (<span>\\(n=0,1,2,3\\)</span>). The results reveal that fluorine substitution significantly enhances both thermodynamically and mechanical stability, which are confirmed by calculated formation energy and elastic constants. The Pugh’s and Poisson ratios are estimated to confirm reduced brittleness and increased ductility in <span>\\(CsGeCl_3\\)</span> upon the increase of fluorine content. The electronic analysis reveals a direct semiconducting nature with a tunable band gap, increasing from 1.03 eV to 2.06 eV upon fluorine substitution. Optical analysis indicates anisotropic behavior in mixed halides perovskites, <span>\\(CsGeCl_2F\\)</span> and <span>\\(CsGeClF_2\\)</span>, exhibiting strong absorption coefficients on the order of <span>\\(10^5\\)</span> cm<span>\\(^{-1}\\)</span>, low reflectivity, and weak electron–hole interactions. These findings underscore the potential of <span>\\(CsGeCl_{3-n}F_n\\)</span> perovskites for improved performance in solar cells and other optoelectronic devices. The results offer valuable insights into optimizing these materials for advanced optoelectronic applications and sustainable energy technologies.</p>","PeriodicalId":787,"journal":{"name":"The European Physical Journal B","volume":"98 3","pages":""},"PeriodicalIF":1.7000,"publicationDate":"2025-03-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Stability, photovoltaic, and optoelectronic properties of eco-friendly \\\\(CsGeCl_{3-n}F_n\\\\) halide perovskite for solar cells applications: insights from DFT calculations\",\"authors\":\"J. Islah, E. Darkaoui, A. Abbassi, S. Taj, B. Manaut, H. 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The electronic analysis reveals a direct semiconducting nature with a tunable band gap, increasing from 1.03 eV to 2.06 eV upon fluorine substitution. Optical analysis indicates anisotropic behavior in mixed halides perovskites, <span>\\\\(CsGeCl_2F\\\\)</span> and <span>\\\\(CsGeClF_2\\\\)</span>, exhibiting strong absorption coefficients on the order of <span>\\\\(10^5\\\\)</span> cm<span>\\\\(^{-1}\\\\)</span>, low reflectivity, and weak electron–hole interactions. These findings underscore the potential of <span>\\\\(CsGeCl_{3-n}F_n\\\\)</span> perovskites for improved performance in solar cells and other optoelectronic devices. 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引用次数: 0
摘要
本研究探讨了氟取代无铅卤化物钙钛矿\(CsGeCl_{3-n}F_n\)在清洁能源应用中的特点,重点研究了其结构、稳定性和光电特性。使用Quantum Espresso代码(QE)进行密度泛函理论(DFT)计算,以评估\(CsGeCl_{3-n}F_n\)系列(\(n=0,1,2,3\))的材料性能。结果表明,氟取代显著提高了聚合物的热力学和力学稳定性,这一点得到了计算得到的地层能和弹性常数的证实。Pugh’s和泊松比值的估计证实,随着氟含量的增加,\(CsGeCl_3\)的脆性降低,延性增加。电子分析显示其具有直接半导体性质,带隙可调,在氟取代后从1.03 eV增加到2.06 eV。光学分析表明,混合卤化物钙钛矿\(CsGeCl_2F\)和\(CsGeClF_2\)具有各向异性,具有\(10^5\) cm \(^{-1}\)量级的强吸收系数、低反射率和弱电子-空穴相互作用。这些发现强调了\(CsGeCl_{3-n}F_n\)钙钛矿在改善太阳能电池和其他光电器件性能方面的潜力。研究结果为优化这些材料用于先进光电应用和可持续能源技术提供了有价值的见解。
Stability, photovoltaic, and optoelectronic properties of eco-friendly \(CsGeCl_{3-n}F_n\) halide perovskite for solar cells applications: insights from DFT calculations
This study explores the characteristics of fluorine-substituted lead-free halide perovskites \(CsGeCl_{3-n}F_n\) for clean energy applications, focusing on their structural, stability, and optoelectronic characteristics. Density functional theory (DFT) calculations, using Quantum Espresso code (QE), were performed to assess the material performance of the \(CsGeCl_{3-n}F_n\) series (\(n=0,1,2,3\)). The results reveal that fluorine substitution significantly enhances both thermodynamically and mechanical stability, which are confirmed by calculated formation energy and elastic constants. The Pugh’s and Poisson ratios are estimated to confirm reduced brittleness and increased ductility in \(CsGeCl_3\) upon the increase of fluorine content. The electronic analysis reveals a direct semiconducting nature with a tunable band gap, increasing from 1.03 eV to 2.06 eV upon fluorine substitution. Optical analysis indicates anisotropic behavior in mixed halides perovskites, \(CsGeCl_2F\) and \(CsGeClF_2\), exhibiting strong absorption coefficients on the order of \(10^5\) cm\(^{-1}\), low reflectivity, and weak electron–hole interactions. These findings underscore the potential of \(CsGeCl_{3-n}F_n\) perovskites for improved performance in solar cells and other optoelectronic devices. The results offer valuable insights into optimizing these materials for advanced optoelectronic applications and sustainable energy technologies.