۱۴۰۵/۴/۲۷، ۰۴:۳۳ عصر
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۲. Fritts, C. E. (1883). “On a New Form of Selenium Cell.” American Journal of Science.
۳. Ohl, R. S. (1946). “Light-Sensitive Electric Device.” U.S. Patent 2,402,662.
۴. Shockley, W. (1949). “The Theory of p-n Junctions in Semiconductors and p-n Junction Transistors.” Bell System Technical Journal, 28(3), 435–489. DOI: 10.1002/j.1538-7305.1949.tb03645.x
۵. Chapin, D. M., Fuller, C. S., & Pearson, G. L. (1954). “A New Silicon p-n Junction Photocell for Converting Solar Radiation into Electrical Power.” Journal of Applied Physics, 25, 676–677. DOI: 10.1063/1.1721711
۶. Shockley, W., & Queisser, H. J. (1961). “Detailed Balance Limit of Efficiency of p-n Junction Solar Cells.” Journal of Applied Physics, 32, 510–519. DOI: 10.1063/1.1736034
۷. Loferski, J. J. (1956). “Theoretical Considerations Governing the Choice of the Optimum Semiconductor for Photovoltaic Solar Energy Conversion.” Journal of Applied Physics, 27, 777–784. DOI: 10.1063/1.1722483
۸. Prince, M. B. (1955). “Silicon Solar Energy Converters.” Journal of Applied Physics, 26, 534–540. DOI: 10.1063/1.1722065
۹. Wolf, M. (1977). “Historical Development of the Solar Cell.” Solar Energy, 19(1), 93–96. DOI: 10.1016/0038-092X(77)90049-7
۱۰. Green, M. A. (1984). “The Art of Overcoming the Shockley–Queisser Limit.” Progress in Photovoltaics: Research and Applications.
۱۱. Swanson, R. M. (2005). “Approaching the 29% Limit Efficiency of Silicon Solar Cells.” 31st IEEE Photovoltaic Specialists Conference.
۱۲. Green, M. A. (1984). “High Efficiency Silicon Solar Cells.” Transactions of the IEEE Electron Devices Group.
۱۳. Sze, S. M. (1969). “Physics of Semiconductor Devices.” Wiley-Interscience.
۱۴. Martin, A. M., & Green, M. A. (1981). “Solar Cell Fill Factors: General Graphical Analysis.” Applied Physics Letters, 38, 160–163.
۱۵. Cuevas, A., & Ruiz, J. M. (2000). “The Minority-Carrier Density in the Base of a Solar Cell.” Progress in Photovoltaics: Research and Applications.
۱۶. Green, M. A. (1982). “Solar Cells: Operating Principles, Technology, and System Applications.” Prentice Hall.
۱۷. Fahrenbruch, A. L., & Bube, R. H. (1983). “Fundamentals of Solar Cells: Photovoltaic Solar Energy Conversion.” Academic Press.
۱۸. Zweibel, K. (1995). “Thin Film PV Manufacturing: A Status Report.” Progress in Photovoltaics: Research and Applications.
۱۹. Ullal, H. S., & von Roedern, B. (2007). “Thin Film CIGS and CdTe Photovoltaic Technologies: Commercialization, Critical Issues, and Applications.” 22nd European Photovoltaic Solar Energy Conference.
۲۰. Green, M. A., Emery, K., Hishikawa, Y., Warta, W., & Dunlop, E. D. “Solar Cell Efficiency Tables.” Progress in Photovoltaics: Research and Applications. این مجموعه بهصورت دورهای منتشر میشود و مرجع اصلی رکوردهای بازدهی سلولهای خورشیدی است.
۲۱. Chopra, K. L., Paulson, P. D., & Dutta, V. (2004). “Thin-Film Solar Cells: An Overview.” Progress in Photovoltaics: Research and Applications, 12, 69–92. DOI: 10.1002/pip.541
۲۲. Romeo, A., Bosio, A., Tedeschi, R., & Romeo, N. (2003). “Recent Progress on CdTe/CdS Thin Film Solar Cells.” Solar Energy, 77, 795–801.
۲۳. Repins, I., Contreras, M. A., Egaas, B., et al. (2008). “19.9% Efficient ZnO/CdS/CuInGaSe₂ Solar Cell with 81.2% Fill Factor.” Progress in Photovoltaics: Research and Applications, 16, 235–239. DOI: 10.1002/pip.822
۲۴. Ramanujam, J., & सिंह, U. P. (2017). “Copper Indium Gallium Selenide Based Solar Cells—A Review.” Energy & Environmental Science, 10, 1306–1319. DOI: 10.1039/C7EE00826H
۲۵. Grätzel, M. (2001). “Photoelectrochemical Cells.” Nature, 414, 338–344. DOI: 10.1038/35104607
۲۶. O’Regan, B., & Grätzel, M. (1991). “A Low-Cost, High-Efficiency Solar Cell Based on Dye-Sensitized Colloidal TiO₂ Films.” Nature, 353, 737–740. DOI: 10.1038/353737a0
۲۷. Hagfeldt, A., Boschloo, G., Sun, L., Kloo, L., & Pettersson, H. (2010). “Dye-Sensitized Solar Cells.” Chemical Reviews, 110, 6595–6663. DOI: 10.1021/cr900356p
۲۸. Tang, C. W. (1986). “Two-Layer Organic Photovoltaic Cell.” Applied Physics Letters, 48, 183–185. DOI: 10.1063/1.96937
۲۹. Sariciftci, N. S., Smilowitz, L., Heeger, A. J., & Wudl, F. (1992). “Photoinduced Electron Transfer from a Conducting Polymer to Buckminsterfullerene.” Science, 258, 1474–1476. DOI: 10.1126/science.258.5087.1474
۳۰. Yu, G., Gao, J., Hummelen, J. C., Wudl, F., & Heeger, A. J. (1995). “Polymer Photovoltaic Cells: Enhanced Efficiencies via a Network of Internal Donor–Acceptor Heterojunctions.” Science, 270, 1789–1791. DOI: 10.1126/science.270.5243.1789
۳۱. Brabec, C. J., Sariciftci, N. S., & Hummelen, J. C. (2001). “Plastic Solar Cells.” Advanced Functional Materials, 11, 15–26.
۳۲. Günes, S., Neugebauer, H., & Sariciftci, N. S. (2007). “Conjugated Polymer-Based Organic Solar Cells.” Chemical Reviews, 107, 1324–1338. DOI: 10.1021/cr050149z
۳۳. Kojima, A., Teshima, K., Shirai, Y., & Miyasaka, T. (2009). “Organometal Halide Perovskites as Visible-Light Sensitizers for Photovoltaic Cells.” Journal of the American Chemical Society, 131, 6050–6051. DOI: 10.1021/ja809598r
۳۴. Kim, H. S., Lee, C. R., Im, J. H., et al. (2012). “Lead Iodide Perovskite Sensitized All-Solid-State Submicron Thin Film Mesoscopic Solar Cell with Efficiency Exceeding 9%.” Scientific Reports, 2, 591. DOI: 10.1038/srep00591
۳۵. Lee, M. M., Teuscher, J., Miyasaka, T., Murakami, T. N., & Snaith, H. J. (2012). “Efficient Hybrid Solar Cells Based on Meso-Superstructured Organometal Halide Perovskites.” Science, 338, 643–647. DOI: 10.1126/science.1228604
۳۶. Burschka, J., Pellet, N., Moon, S. J., et al. (2013). “Sequential Deposition as a Route to High-Performance Perovskite-Sensitized Solar Cells.” Nature, 499, 316–319. DOI: 10.1038/nature12340
۳۷. Liu, M., Johnston, M. B., & Snaith, H. J. (2013). “Efficient Planar Heterojunction Perovskite Solar Cells by Vapour Deposition.” Nature, 501, 395–398. DOI: 10.1038/nature12509
۳۸. Zhou, H., Chen, Q., Li, G., et al. (2014). “Interface Engineering of Highly Efficient Perovskite Solar Cells.” Science, 345, 542–546. DOI: 10.1126/science.1254050
۳۹. Jeon, N. J., Noh, J. H., Kim, Y. C., et al. (2015). “Solvent Engineering for High-Performance Inorganic–Organic Hybrid Perovskite Solar Cells.” Nature Materials, 14, 897–903. DOI: 10.1038/nmat4014
۴۰. Snaith, H. J. (2013). “Perovskites: The Emergence of a New Era for Low-Cost, High-Efficiency Solar Cells.” Journal of Physical Chemistry Letters, 4, 3623–3630. DOI: 10.1021/jz4020162
۴۱. Green, M. A., Ho-Baillie, A., & Snaith, H. J. (2014). “The Emergence of Perovskite Solar Cells.” Nature Photonics, 8, 506–514. DOI: 10.1038/nphoton.2014.134
۴۲. Correa-Baena, J. P., Saliba, M., Buonassisi, T., et al. (2017). “The Rapid Evolution of Highly Efficient Perovskite Solar Cells.” Energy & Environmental Science, 10, 710–727. DOI: 10.1039/C6EE03397K
۴۳. Polman, A., Knight, M., Garnett, E. C., Ehrler, B., & Sinke, W. C. (2016). “Photovoltaic Materials: Present Efficiencies and Future Challenges.” Science, 352, aad4424. DOI: 10.1126/science.aad4424
۴۴. Green, M. A., Dunlop, E. D., Hohl-Ebinger, J., Yoshita, M., Kopidakis, N., & Hao, X. (2022). “Solar Cell Efficiency Tables.” Progress in Photovoltaics: Research and Applications, 30, 3–12. DOI: 10.1002/pip.3502
۴۵. Almansouri, I., Ho-Baillie, A., Bremner, S. P., & Green, M. A. (2017). “Supercharging Silicon Solar Cell Performance by Means of Multijunction Configurations.” IEEE Journal of Photovoltaics, 7, 1–9.
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۴۸. Geisz, J. F., Friedman, D. J., Ward, J. S., et al. (2020). “Six-Junction III–V Solar Cells with 47.1% Conversion Efficiency under 143 Suns Concentrated Sunlight.” Nature Energy, 5, 326–335. DOI: 10.1038/s41560-020-0598-5
۴۹. Green, M. A. (2004). “Lambertian Light Trapping in Textured Solar Cells and Light-Emitting Diodes: Analytical Solutions.” Progress in Photovoltaics: Research and Applications, 12, 381–385.
۵۰. Yablonovitch, E. (1982). “Statistical Ray Optics.” Journal of the Optical Society of America, 72, 899–907.
۵۱. Goetzberger, A., Hebling, C., & Schock, H. W. (2003). “Photovoltaic Materials, History, Status and Outlook.” Materials Science and Engineering: R: Reports, 40, 1–46. DOI: 10.1016/S0927-796X(02)00092-X
۵۲. Aberle, A. G. (2000). “Surface Passivation of Crystalline Silicon Solar Cells: A Review.” Progress in Photovoltaics: Research and Applications, 8, 473–487.
۵۳. Cuevas, A. (2005). “The Recombination Parameter J₀.” Energy Procedia and related publications on silicon solar-cell recombination.
۵۴. Green, M. A. (2012). “The Passivated Emitter and Rear Cell (PERC): From Conception to Mass Production.” Solar Energy Materials and Solar Cells, 143, 190–197.
۵۵. Haegel, N. M., Margolis, R., Buonassisi, T., et al. (2017). “Terawatt-Scale Photovoltaics: Transform Global Energy.” Science, 356, 141–143. DOI: 10.1126/science.aal1288
۵۶. Haegel, N. M., Verlinden, P., Victoria, M., et al. (2023). “Solar photovoltaics is ready to power a sustainable future.” Science, 382, 1322–1325.
۵۷. Goodrich, A., James, T., & Woodhouse, M. (2012). “Residential, Commercial, and Utility-Scale Photovoltaic System Prices in the United States.” National Renewable Energy Laboratory.
۵۸. Fthenakis, V. M., & Kim, H. C. (2011). “Photovoltaics: Life-Cycle Analyses.” Solar Energy, 85, 1609–1628. DOI: 10.1016/j.solener.2009.10.002
۵۹. de Wild-Scholten, M. J. (2013). “Energy Payback Time and Carbon Footprint of Commercial Photovoltaic Systems.” Solar Energy Materials and Solar Cells, 119, 296–305.
۶۰. Peng, J., Lu, L., & Yang, H. (2013). “Review on Life Cycle Assessment of Energy Payback and Greenhouse Gas Emission of Solar Photovoltaic Systems.” Renewable and Sustainable Energy Reviews, 19, 255–274. DOI: 10.1016/j.rser.2012.11.035
۶۱. Chu, S., & Majumdar, A. (2012). “Opportunities and Challenges for a Sustainable Energy Future.” Nature, 488, 294–303. DOI: 10.1038/nature11475
۶۲. Lewis, N. S. (2007). “Toward Cost-Effective Solar Energy Use.” Science, 315, 798–801. DOI: 10.1126/science.1137014
۶۳. Lewis, N. S., & Nocera, D. G. (2006). “Powering the Planet: Chemical Challenges in Solar Energy Utilization.” Proceedings of the National Academy of Sciences, 103, 15729–15735. DOI: 10.1073/pnas.0603395103
۶۴. Cook, T. R., Dogville, D. K., Reece, S. Y., et al. (2010). “Solar Energy Supply and Storage for the Legacy and Nonlegacy World.” Chemical Reviews, 110, 6474–6502.
۶۵. Armaroli, N., & Balzani, V. (2007). “The Future of Energy Supply: Challenges and Opportunities.” Angewandte Chemie International Edition, 46, 52–66.
۶۶. Jacobson, M. Z., & Delucchi, M. A. (2011). “Providing All Global Energy with Wind, Water, and Solar Power, Part I: Technologies, Energy Resources, Quantities and Areas of Infrastructure and Materials.” Energy Policy, 39, 1154–1169. DOI: 10.1016/j.enpol.2010.11.040
۶۷. Jacobson, M. Z., Delucchi, M. A., Cameron, M. A., & Frew, B. A. (2015). “Low-Cost Solution to the Grid Reliability Problem with 100% Penetration of Intermittent Wind, Water, and Solar for All Purposes.” Proceedings of the National Academy of Sciences, 112, 15060–15065. DOI: 10.1073/pnas.1510028112
۶۸. Denholm, P., Ela, E., Kirby, B., & Milligan, M. (2010). “The Role of Energy Storage with Renewable Electricity Generation.” National Renewable Energy Laboratory.
۶۹. Lund, H. (2007). “Large-Scale Integration of Optimal Combinations of PV, Wind and Wave Power into the Electricity Supply.” Renewable Energy, 32, 229–241.
۷۰. Hoff, T. E., Perez, R., Margolis, R., & Watts, D. (2013). “The Value of Distributed Solar Electric Generation.” Energy Policy, 62, 235–245.
۷۱. Perez, R., & Fthenakis, V. (2012). “An Overview of Solar Power Variability and Grid Integration.” Solar Energy, 86, 1–3.
۷۲. Kleissl, J. (2013). “Solar Energy Forecasting and Resource Assessment.” Academic Press.
۷۳. Inman, R. H., Pedro, H. T. C., & Coimbra, C. F. M. (2013). “Solar Forecasting Methods for Renewable Energy Integration.” Progress in Energy and Combustion Science, 39, 535–576. DOI: 10.1016/j.pecs.2013.06.002
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۷۶. Duffie, J. A., & Beckman, W. A. (1991). “Solar Engineering of Thermal Processes.” Wiley.
۷۷. Kalogirou, S. A. (2004). “Solar Thermal Collectors and Applications.” Progress in Energy and Combustion Science, 30, 231–295. DOI: 10.1016/j.pecs.2004.02.001
۷۸. Kalogirou, S. A. (2009). “Solar Energy Engineering: Processes and Systems.” Academic Press.
۷۹. Goswami, D. Y., Kreith, F., & Kreider, J. F. (2000). “Principles of Solar Engineering.” Taylor & Francis.
۸۰. Tian, Y., & Zhao, C. Y. (2013). “A Review of Solar Collectors and Thermal Energy Storage in Solar Thermal Applications.” Applied Energy, 104, 538–553. DOI: 10.1016/j.apenergy.2012.11.051
۸۱. Fernández-García, A., Zarza, E., Valenzuela, L., & Pérez, M. (2010). “ parabolic-trough Solar Collectors and Their Applications.” Renewable and Sustainable Energy Reviews, 14, 1695–1721.
۸۲. Lovegrove, K., & Stein, W. (2012). “Concentrating Solar Power Technology: Principles, Developments and Applications.” Woodhead Publishing.
۸۳. Herrmann, U., Kelly, B., & Price, H. (2004). “Two-Tank Molten Salt Storage for Parabolic Trough Solar Power Plants.” Energy, 29, 883–893.
۸۴. Gil, A., Medrano, M., Martorell, I., Lázaro, A., Dolado, P., Zalba, B., & Cabeza, L. F. (2010). “State of the Art on High Temperature Thermal Energy Storage for Power Generation.” Renewable and Sustainable Energy Reviews, 14, 31–55.
۸۵. Dincer, I., & Rosen, M. A. (2011). “Thermal Energy Storage: Systems and Applications.” Wiley.
۸۶. Kalogirou, S. A. (2005). “Seawater Desalination Using Renewable Energy Sources.” Progress in Energy and Combustion Science, 31, 242–281.
۸۷. Sharon, H., & Reddy, K. S. (2015). “A Review of Solar Energy Driven Desalination Technologies.” Renewable and Sustainable Energy Reviews, 41, 1080–1118.
۸۸. Shannon, M. A., Bohn, P. W., Elimelech, M., Georgiadis, J. G., Marinas, B. J., & Mayes, A. M. (2008). “Science and Technology for Water Purification in the Coming Decades.” Nature, 452, 301–310.
۸۹. International Energy Agency Photovoltaic Power Systems Programme. “Trends in Photovoltaic Applications.” گزارش سالانه معتبر درباره وضعیت جهانی سامانههای فتوولتائیک.
۹۰. International Energy Agency. “Renewables.” گزارشهای دورهای درباره توسعه انرژیهای تجدیدپذیر و انرژی خورشیدی.
۹۱. International Renewable Energy Agency. “Renewable Power Generation Costs.” گزارشهای سالانه درباره هزینه تولید برق خورشیدی و سایر انرژیهای تجدیدپذیر.
۹۲. National Renewable Energy Laboratory. “Best Research-Cell Efficiencies.” نمودار مرجع جهانی بازدهی سلولها و فناوریهای خورشیدی.
۹۳. National Renewable Energy Laboratory. “Solar Industry Update.” گزارشهای دورهای درباره بازار و فناوری خورشیدی.
۹۴. Fraunhofer Institute for Solar Energy Systems ISE. “Photovoltaics Report.” گزارش معتبر درباره فناوری، ظرفیت، هزینه و روندهای جهانی فتوولتائیک.
۹۵. REN21. “Renewables Global Status Report.” گزارش جامع وضعیت جهانی انرژیهای تجدیدپذیر، شامل انرژی خورشیدی.
۹۶. International Energy Agency. “Technology Roadmap: Solar Photovoltaic Energy.” نقشه راه فناوری و توسعه جهانی انرژی فتوولتائیک.
۹۷. International Energy Agency. “Technology Roadmap: Solar Thermal Electricity.” نقشه راه فناوری نیروگاههای خورشیدی حرارتی متمرکز.
۹۸. Intergovernmental Panel on Climate Change. “Renewable Energy Sources and Climate Change Mitigation.” گزارش علمی جامع درباره نقش انرژی خورشیدی و دیگر منابع تجدیدپذیر در کاهش انتشار گازهای گلخانهای.
۲. Fritts, C. E. (1883). “On a New Form of Selenium Cell.” American Journal of Science.
۳. Ohl, R. S. (1946). “Light-Sensitive Electric Device.” U.S. Patent 2,402,662.
۴. Shockley, W. (1949). “The Theory of p-n Junctions in Semiconductors and p-n Junction Transistors.” Bell System Technical Journal, 28(3), 435–489. DOI: 10.1002/j.1538-7305.1949.tb03645.x
۵. Chapin, D. M., Fuller, C. S., & Pearson, G. L. (1954). “A New Silicon p-n Junction Photocell for Converting Solar Radiation into Electrical Power.” Journal of Applied Physics, 25, 676–677. DOI: 10.1063/1.1721711
۶. Shockley, W., & Queisser, H. J. (1961). “Detailed Balance Limit of Efficiency of p-n Junction Solar Cells.” Journal of Applied Physics, 32, 510–519. DOI: 10.1063/1.1736034
۷. Loferski, J. J. (1956). “Theoretical Considerations Governing the Choice of the Optimum Semiconductor for Photovoltaic Solar Energy Conversion.” Journal of Applied Physics, 27, 777–784. DOI: 10.1063/1.1722483
۸. Prince, M. B. (1955). “Silicon Solar Energy Converters.” Journal of Applied Physics, 26, 534–540. DOI: 10.1063/1.1722065
۹. Wolf, M. (1977). “Historical Development of the Solar Cell.” Solar Energy, 19(1), 93–96. DOI: 10.1016/0038-092X(77)90049-7
۱۰. Green, M. A. (1984). “The Art of Overcoming the Shockley–Queisser Limit.” Progress in Photovoltaics: Research and Applications.
۱۱. Swanson, R. M. (2005). “Approaching the 29% Limit Efficiency of Silicon Solar Cells.” 31st IEEE Photovoltaic Specialists Conference.
۱۲. Green, M. A. (1984). “High Efficiency Silicon Solar Cells.” Transactions of the IEEE Electron Devices Group.
۱۳. Sze, S. M. (1969). “Physics of Semiconductor Devices.” Wiley-Interscience.
۱۴. Martin, A. M., & Green, M. A. (1981). “Solar Cell Fill Factors: General Graphical Analysis.” Applied Physics Letters, 38, 160–163.
۱۵. Cuevas, A., & Ruiz, J. M. (2000). “The Minority-Carrier Density in the Base of a Solar Cell.” Progress in Photovoltaics: Research and Applications.
۱۶. Green, M. A. (1982). “Solar Cells: Operating Principles, Technology, and System Applications.” Prentice Hall.
۱۷. Fahrenbruch, A. L., & Bube, R. H. (1983). “Fundamentals of Solar Cells: Photovoltaic Solar Energy Conversion.” Academic Press.
۱۸. Zweibel, K. (1995). “Thin Film PV Manufacturing: A Status Report.” Progress in Photovoltaics: Research and Applications.
۱۹. Ullal, H. S., & von Roedern, B. (2007). “Thin Film CIGS and CdTe Photovoltaic Technologies: Commercialization, Critical Issues, and Applications.” 22nd European Photovoltaic Solar Energy Conference.
۲۰. Green, M. A., Emery, K., Hishikawa, Y., Warta, W., & Dunlop, E. D. “Solar Cell Efficiency Tables.” Progress in Photovoltaics: Research and Applications. این مجموعه بهصورت دورهای منتشر میشود و مرجع اصلی رکوردهای بازدهی سلولهای خورشیدی است.
۲۱. Chopra, K. L., Paulson, P. D., & Dutta, V. (2004). “Thin-Film Solar Cells: An Overview.” Progress in Photovoltaics: Research and Applications, 12, 69–92. DOI: 10.1002/pip.541
۲۲. Romeo, A., Bosio, A., Tedeschi, R., & Romeo, N. (2003). “Recent Progress on CdTe/CdS Thin Film Solar Cells.” Solar Energy, 77, 795–801.
۲۳. Repins, I., Contreras, M. A., Egaas, B., et al. (2008). “19.9% Efficient ZnO/CdS/CuInGaSe₂ Solar Cell with 81.2% Fill Factor.” Progress in Photovoltaics: Research and Applications, 16, 235–239. DOI: 10.1002/pip.822
۲۴. Ramanujam, J., & सिंह, U. P. (2017). “Copper Indium Gallium Selenide Based Solar Cells—A Review.” Energy & Environmental Science, 10, 1306–1319. DOI: 10.1039/C7EE00826H
۲۵. Grätzel, M. (2001). “Photoelectrochemical Cells.” Nature, 414, 338–344. DOI: 10.1038/35104607
۲۶. O’Regan, B., & Grätzel, M. (1991). “A Low-Cost, High-Efficiency Solar Cell Based on Dye-Sensitized Colloidal TiO₂ Films.” Nature, 353, 737–740. DOI: 10.1038/353737a0
۲۷. Hagfeldt, A., Boschloo, G., Sun, L., Kloo, L., & Pettersson, H. (2010). “Dye-Sensitized Solar Cells.” Chemical Reviews, 110, 6595–6663. DOI: 10.1021/cr900356p
۲۸. Tang, C. W. (1986). “Two-Layer Organic Photovoltaic Cell.” Applied Physics Letters, 48, 183–185. DOI: 10.1063/1.96937
۲۹. Sariciftci, N. S., Smilowitz, L., Heeger, A. J., & Wudl, F. (1992). “Photoinduced Electron Transfer from a Conducting Polymer to Buckminsterfullerene.” Science, 258, 1474–1476. DOI: 10.1126/science.258.5087.1474
۳۰. Yu, G., Gao, J., Hummelen, J. C., Wudl, F., & Heeger, A. J. (1995). “Polymer Photovoltaic Cells: Enhanced Efficiencies via a Network of Internal Donor–Acceptor Heterojunctions.” Science, 270, 1789–1791. DOI: 10.1126/science.270.5243.1789
۳۱. Brabec, C. J., Sariciftci, N. S., & Hummelen, J. C. (2001). “Plastic Solar Cells.” Advanced Functional Materials, 11, 15–26.
۳۲. Günes, S., Neugebauer, H., & Sariciftci, N. S. (2007). “Conjugated Polymer-Based Organic Solar Cells.” Chemical Reviews, 107, 1324–1338. DOI: 10.1021/cr050149z
۳۳. Kojima, A., Teshima, K., Shirai, Y., & Miyasaka, T. (2009). “Organometal Halide Perovskites as Visible-Light Sensitizers for Photovoltaic Cells.” Journal of the American Chemical Society, 131, 6050–6051. DOI: 10.1021/ja809598r
۳۴. Kim, H. S., Lee, C. R., Im, J. H., et al. (2012). “Lead Iodide Perovskite Sensitized All-Solid-State Submicron Thin Film Mesoscopic Solar Cell with Efficiency Exceeding 9%.” Scientific Reports, 2, 591. DOI: 10.1038/srep00591
۳۵. Lee, M. M., Teuscher, J., Miyasaka, T., Murakami, T. N., & Snaith, H. J. (2012). “Efficient Hybrid Solar Cells Based on Meso-Superstructured Organometal Halide Perovskites.” Science, 338, 643–647. DOI: 10.1126/science.1228604
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