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1

Jain, R. K., and D. J. Flood. "Monolithic and Mechanical Multijunction Space Solar Cells." Journal of Solar Energy Engineering 115, no. 2 (1993): 106–11. http://dx.doi.org/10.1115/1.2930027.

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High-efficiency, lightweight, radiation-resistant solar cells are essential to meet the large power requirements of future space missions. Single-junction cells are limited in efficiency. Higher cell efficiencies could be realized by developing multijunction, multibandgap solar cells. Monolithic and mechanically stacked tandem solar cells surpassing single-junction cell efficiencies have been fabricated. This article surveys the current status of monolithic and mechanically stacked multibandgap space solar cells, and outlines problems yet to be resolved. The monolithic and mechanically stacked
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2

Makita, Kikuo, Hidenori Mizuno, Hironori Komaki, et al. "Over 20% Efficiency Mechanically Stacked Multi-Junction Solar Cells Fabricated by Advanced Bonding Using Conductive Nanoparticle Alignments." MRS Proceedings 1538 (2013): 167–71. http://dx.doi.org/10.1557/opl.2013.670.

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ABSTRACTThis paper shows a new semiconductor bonding technology for mechanically stacked multi-junction solar cells. Our strategy is the combination of conductive nanoparticle alignments and the van der Waals bonding technique. With this method, reasonably low bonding resistances and minimal optical absorption losses were simultaneously attained for the use of mechanically stacked solar cells. We examined a GaInP(Eg-1.89 eV)/GaAs (Eg-1.42 eV)/InGaAsP (Eg-1.15 eV) three-junction solar cell fabricated with this bonding method. As a result, the total efficiency of 22.5% was achieved, which was in
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3

Matsubara, Hideki, Tatsuya Tanabe, Akihiro Moto, Yasuo Mine, and Shigenori Takagishi. "Over 27% efficiency GaAs/InGaAs mechanically stacked solar cell." Solar Energy Materials and Solar Cells 50, no. 1-4 (1998): 177–84. http://dx.doi.org/10.1016/s0927-0248(97)00142-6.

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4

Partain, L. D., M. S. Kuryla, R. E. Weiss, et al. "26.1% solar cell efficiency for Ge mechanically stacked under GaAs." Journal of Applied Physics 62, no. 7 (1987): 3010–15. http://dx.doi.org/10.1063/1.339389.

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5

Enayat Taghavi Moghaddam, S., and S. Mehrdad Kankanani. "Numerical Simulation of a Mechanically Stacked GaAs/Ge Solar Cell." Engineering, Technology & Applied Science Research 7, no. 3 (2017): 1611–14. http://dx.doi.org/10.48084/etasr.935.

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In this paper, GaAs and Ge solar cells have been studied and simulated separately and the inner characteristics of each have been calculated including the energy band structure, the internal field, carrier density distribution in the equilibrium condition (dark condition) and the voltage-current curve in the sun exposure with the output power of each one. Finally, the output power of these two mechanically stacked cells is achieved. Drift-diffusion model have been used for simulation that solved with numerically method and Gummel algorithm. In this simulation, the final cells exposed to sun li
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6

Enayat, Taghavi Moghaddam S., and Kankanani S. Mehrdad. "Numerical Simulation of a Mechanically Stacked GaAs/Ge Solar Cell." Engineering, Technology & Applied Science Research 7, no. 3 (2017): 1611–14. https://doi.org/10.5281/zenodo.809232.

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In this paper, GaAs and Ge solar cells have been studied and simulated separately and the inner characteristics of each have been calculated including the energy band structure, the internal field, carrier density distribution in the equilibrium condition (dark condition) and the voltage-current curve in the sun exposure with the output power of each one. Finally, the output power of these two mechanically stacked cells is achieved. Drift-diffusion model have been used for simulation that solved with numerically method and Gummel algorithm. In this simulation, the final cells exposed to sun li
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7

Li, Zhidong, Hongling Xiao, Xiaoliang Wang, et al. "Theoretical simulations of InGaN/Si mechanically stacked two-junction solar cell." Physica B: Condensed Matter 414 (April 2013): 110–14. http://dx.doi.org/10.1016/j.physb.2013.01.026.

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8

Horng, Ray-Hua, Yu-Cheng Kao, Apoorva Sood, Po-Liang Liu, Wei-Cheng Wang, and Yen-Jui Teseng. "GaInP/GaAs/poly-Si Multi-Junction Solar Cells by in Metal Balls Bonding." Crystals 11, no. 7 (2021): 726. http://dx.doi.org/10.3390/cryst11070726.

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In this study, a mechanical stacking technique has been used to bond together the GaInP/GaAs and poly-silicon (Si) solar wafers. A GaInP/GaAs/poly-Si triple-junction solar cell has mechanically stacked using a low-temperature bonding process which involves micro metal In balls on a metal line using a high-optical-transmission spin-coated glue material. Current–voltage measurements of the GaInP/GaAs/poly-Si triple-junction solar cells have carried out at room temperature both in the dark and under 1 sun with 100 mW/cm2 power density using a solar simulator. The GaInP/GaAs/poly-Si triple-junctio
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9

Shen, Heping, The Duong, Jun Peng, et al. "Mechanically-stacked perovskite/CIGS tandem solar cells with efficiency of 23.9% and reduced oxygen sensitivity." Energy & Environmental Science 11, no. 2 (2018): 394–406. http://dx.doi.org/10.1039/c7ee02627g.

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10

Menon, Harigovind, Al Amin, Xiaomeng Duan, et al. "Exploring the Feasibility and Performance of Perovskite/Antimony Selenide Four-Terminal Tandem Solar Cells." Solar 4, no. 2 (2024): 222–31. http://dx.doi.org/10.3390/solar4020010.

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The tandem solar cell presents a potential solution to surpass the Shockley–Queisser limit observed in single-junction solar cells. However, creating a tandem device that is both cost-effective and highly efficient poses a significant challenge. In this study, we present proof of concept for a four-terminal (4T) tandem solar cell utilizing a wide bandgap (1.6–1.8 eV) perovskite top cell and a narrow bandgap (1.2 eV) antimony selenide (Sb2Se3) bottom cell. Using a one-dimensional (1D) solar cell capacitance simulator (SCAPS), our calculations indicate the feasibility of this architecture, proje
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11

Lamanna, Enrico, Fabio Matteocci, Emanuele Calabrò, et al. "Mechanically Stacked, Two-Terminal Graphene-Based Perovskite/Silicon Tandem Solar Cell with Efficiency over 26%." Joule 4, no. 4 (2020): 865–81. http://dx.doi.org/10.1016/j.joule.2020.01.015.

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12

Yamaguchi, Masafumi, Kan-Hua Lee, Daisuke Sato, et al. "Overview of Si Tandem Solar Cells and Approaches to PV-Powered Vehicle Applications." MRS Advances 5, no. 8-9 (2020): 441–50. http://dx.doi.org/10.1557/adv.2020.66.

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ABSTRACTDevelopment of high-efficiency solar cell modules and new application fields are significant for the further development of photovoltaics (PV) and creation of new clean energy infrastructure based on PV. Especially, development of PV-powered EV applications is desirable and very important for this end. This paper shows analytical results for efficiency potential of various solar cells for choosing candidates of high-efficiency solar cell modules for automobile applications. As a result of analysis, Si tandem solar cells are thought to be some of their candidates. This paper also overvi
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13

Yamada, Takashi, Akihiro Moto, Yasuhiro Iguchi, et al. "Mechanically Stacked GaAs/GaInAsP Dual-Junction Solar Cell with High Conversion Efficiency of More than 31%." Japanese Journal of Applied Physics 44, No. 31 (2005): L988—L990. http://dx.doi.org/10.1143/jjap.44.l988.

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14

Pandey, Rahul, and Rishu Chaujar. "Numerical simulations of novel SiGe-based IBC-HJ solar cell for standalone and mechanically stacked tandem applications." Materials Research Bulletin 93 (September 2017): 282–89. http://dx.doi.org/10.1016/j.materresbull.2017.05.006.

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15

Zhao, Lu, Giovanni Flamand, Yves Mols, Johan Van der Heide, and Jef Poortmans. "Novel Mechanically Stacked Multi-Junction Solar Cells Applying Ultra-Thin III-V Cells and Wafer Based Germanium Cell." ECS Transactions 27, no. 1 (2019): 1123–28. http://dx.doi.org/10.1149/1.3360760.

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16

Hajjiah, Ali, Fahad Parmouneh, Afshin Hadipour, Manoj Jaysankar, and Tom Aernouts. "Light Management Enhancement for Four-Terminal Perovskite-Silicon Tandem Solar Cells: The Impact of the Optical Properties and Thickness of the Spacer Layer between Sub-Cells." Materials 11, no. 12 (2018): 2570. http://dx.doi.org/10.3390/ma11122570.

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Mechanical stacking of a thin film perovskite-based solar cell on top of crystalline Si (cSi) solar cell has recently attracted a lot of attention as it is considered a viable route to overcome the limitations of cSi single junction power conversion efficiency. Effective light management is however crucial to minimize reflection or parasitic absorption losses in either the top cell or in the light in-coupling of the transmitted light to the bottom sub-cell. The study here is focused on calculating an optimum performance of a four-terminal mechanically stacked tandem structure by varying the op
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17

Beattie, Neil S., Guillaume Zoppi, Ian Farrer, Patrick See, Robert W. Miles, and David A. Ritchie. "Investigation of Quantum Dot Solar Cell Device Performance." MRS Proceedings 1551 (2013): 137–42. http://dx.doi.org/10.1557/opl.2013.959.

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ABSTRACTThe device performance of GaAs p-i-n solar cells containing stacked layers of self-assembled InAs quantum dots is investigated. The solar cells demonstrate enhanced external quantum efficiency below the GaAs band gap relative to a control device without quantum dots. This is attributed to the capture of sub-band gap photons by the quantum dots. Analysis of the current density versus voltage characteristic for the quantum dot solar cell reveals a decrease in the series resistance as the device area is reduce from 0.16 cm2 to 0.01 cm2. This is effect is not observed in control devices an
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18

Pandey, Rahul, and Rishu Chaujar. "Technology computer aided design of 29.5% efficient perovskite/interdigitated back contact silicon heterojunction mechanically stacked tandem solar cell for energy-efficient applications." Journal of Photonics for Energy 7, no. 2 (2017): 022503. http://dx.doi.org/10.1117/1.jpe.7.022503.

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19

Khvostikov, V. P., O. A. Khvostikova, P. Y. Gazaryan, et al. "Photovoltaic Cells Based on GaSb and Ge for Solar and Thermophotovoltaic Applications." Journal of Solar Energy Engineering 129, no. 3 (2006): 291–97. http://dx.doi.org/10.1115/1.2734572.

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In the present work, high efficient photovoltaic (PV) cells based on gallium antimonide have been developed and fabricated with the use of the liquid phase epitaxy (LPE) and diffusion from the gas phase techniques. They are intended for conversion of the infrared (IR) part of the solar spectrum into electricity by tandems of mechanically stacked cells and for conversion of the thermal radiation of emitters heated by the sunlight. On the ground of investigation of the LPE temperature regimes and the tellurium doping effect, GaSb PV cells have been fabricated with the efficiency of 6% at the con
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20

Kashyap, Savita, Jaya Madan, Rahul Pandey, and Rajnish Sharma. "Process and device simulations aimed at improving the emitter region performance of silicon PERC solar cells." Journal of Micromechanics and Microengineering 32, no. 2 (2021): 025001. http://dx.doi.org/10.1088/1361-6439/ac404b.

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Abstract Achieved levels of silicon-based passivated emitter and rear cell (PERC) solar cells laboratory and module-level conversion efficiencies are still far from the theoretically achievable Auger limit of 29.4% for silicon solar cells, prominently due to emitter recombination and resistive losses. The emitter region in PERC devices is formed by using either ion implantation followed by a diffusion process or POCl3 diffusion. In ion-implanted emitter-based PERC, the process variables such as dose, energy, diffusion time, and temperature play a vital role in defining the characteristics of t
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21

Suryawanshi, M. P., Seung Wook Shin, U. V. Ghorpade, et al. "Improved solar cell performance of Cu2ZnSnS4 (CZTS) thin films prepared by sulfurizing stacked precursor thin films via SILAR method." Journal of Alloys and Compounds 671 (June 2016): 509–16. http://dx.doi.org/10.1016/j.jallcom.2016.02.015.

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22

Pawar, S. M., A. I. Inamdar, B. S. Pawar, et al. "Synthesis of Cu2ZnSnS4 (CZTS) absorber by rapid thermal processing (RTP) sulfurization of stacked metallic precursor films for solar cell applications." Materials Letters 118 (March 2014): 76–79. http://dx.doi.org/10.1016/j.matlet.2013.12.047.

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23

Fajariah, Amalia Rohmah, Euis Siti Nurazizah, Ferry Faizal, and Lusi Safriani. "Synthesis of TiO<sub>2</sub> Nanofiber as Photoanode of Dye Sensitized Solar Cells (DSSC)." Key Engineering Materials 950 (July 31, 2023): 3–9. http://dx.doi.org/10.4028/p-1hoxbf.

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Recently, dye sensitized solar cell (DSSC) are considered to replace the previous generation of solar cells. DSSC uses an organic dye to absorb light and convert it to electricity. One-dimensional morphological structure of photoanode that provides a straight pathway for electron transport can improve the efficiency of DSSC. TiO2 nanofibers is one-dimensional structure of oxide semiconductor material commonly used as photoanode in DSSC. A simple method to synthesis continuous nanofiber is electrospinning method that use the influence of electrostatic forces. The nanofiber’s diameter that produ
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24

Mathews, Ian, Donagh O'Mahony, Kevin Thomas, Emanuele Pelucchi, Brian Corbett, and Alan P. Morrison. "Adhesive bonding for mechanically stacked solar cells." Progress in Photovoltaics: Research and Applications 23, no. 9 (2014): 1080–90. http://dx.doi.org/10.1002/pip.2517.

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25

Steiner, Myles A., John F. Geisz, J. Scott Ward, et al. "Optically Enhanced Photon Recycling in Mechanically Stacked Multijunction Solar Cells." IEEE Journal of Photovoltaics 6, no. 1 (2016): 358–65. http://dx.doi.org/10.1109/jphotov.2015.2494690.

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26

Partain, L. D., L. M. Fraas, P. S. McLeod, J. A. Cape, and M. S. Kuryla. "Optics and calculated efficiencies of mechanically stacked two‐junction solar cells." Journal of Applied Physics 62, no. 2 (1987): 694–99. http://dx.doi.org/10.1063/1.339744.

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27

Fraas, L. M., L. D. Partain, P. S. McLeod, and J. A. Cape. "Near-term higher efficiencies with mechanically stacked two-color solar batteries." Solar Cells 19, no. 1 (1986): 73–83. http://dx.doi.org/10.1016/0379-6787(86)90051-7.

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28

Barrioz, Vincent, Simon Hodgson, Peter Holliman, et al. "Study of optical losses in mechanically stacked dye-sensitized/CdTe tandem solar cells." MRS Proceedings 1538 (2013): 221–26. http://dx.doi.org/10.1557/opl.2013.985.

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ABSTRACTIn a constant effort to capture effectively more of the spectral range from the sun, multi-junction cells are being investigated. In this context, the marriage of thin film and dye-sensitized solar cells (DSC) PV technologies may be able to offer greater efficiency whilst maintaining the benefits of each individual technology. DSC devices offer advantages in the nature of both the metal oxide photo-electrode and dye absorption bands, which can be tuned to vary the optical performance of this part of a tandem device, while CdTe cells absorb the majority of light above their band-gap in
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29

Tayubi, Y. R., A. Suhandi, A. Samsudin, P. Arifin, and Supriyatman. "Simulation and optimization performance of GaAs/GaAs0.5Sb0.5/GaSb mechanically stacked tandem solar cells." Journal of Physics: Conference Series 1013 (May 2018): 012179. http://dx.doi.org/10.1088/1742-6596/1013/1/012179.

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Mandel, Savannah. "Stacked organic solar cell increased to 15.9% efficiency." Scilight 2020, no. 16 (2020): 161103. http://dx.doi.org/10.1063/10.0001162.

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31

Lin, Yen-Tseng, Chu-Hsien Chou, Fang-Chung Chen, Chih-Wei Chu, and Chain-Shu Hsu. "Reduced optical loss in mechanically stacked multi-junction organic solar cells exhibiting complementary absorptions." Optics Express 22, S2 (2014): A481. http://dx.doi.org/10.1364/oe.22.00a481.

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32

Kanda, Hiroyuki, Abdullah Uzum, Hitoshi Nishino, et al. "Interface Optoelectronics Engineering for Mechanically Stacked Tandem Solar Cells Based on Perovskite and Silicon." ACS Applied Materials & Interfaces 8, no. 49 (2016): 33553–61. http://dx.doi.org/10.1021/acsami.6b07781.

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Tayagaki, Takeshi, Kikuo Makita, Hidenori Mizuno, Ryuji Oshima, and Takeyoshi Sugaya. "Investigation of the open-circuit voltage in mechanically stacked InGaP/GaAs//InGaAsP/InGaAs solar cells." Japanese Journal of Applied Physics 56, no. 8S2 (2017): 08MC01. http://dx.doi.org/10.7567/jjap.56.08mc01.

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34

Sameshima, Toshiyuki. "Reduction in optical reflection at intermediate adhesive layer for mechanically stacked multi junction solar cells." Advanced Materials Proceedings 3, no. 5 (2018): 361–65. http://dx.doi.org/10.5185/amp.2018/409.

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35

Tayagaki, Takeshi, Kikuo Makita, Ryuji Oshima, Hidenori Mizuno, and Takeyoshi Sugaya. "Impact of nanometer air gaps on photon recycling in mechanically stacked multi-junction solar cells." Optics Express 27, no. 4 (2019): A1. http://dx.doi.org/10.1364/oe.27.0000a1.

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36

Lai, Fang-I., Jui-Fu Yang, Wei-Chun Chen, Yu-Chao Hsu, and Shou-Yi Kuo. "All-Vacuum-Deposited Bifacial Cu2ZnSnSe4 Photovoltaic Cells with Sputtered Cd-Free Buffer Layer." International Journal of Energy Research 2023 (February 3, 2023): 1–17. http://dx.doi.org/10.1155/2023/9215680.

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By depositing metal precursors on fluorine-doped tin oxide substrates using evaporation and postselenisation and modifying the number of stacked metallic precursor layers, this study systematically analysed the effect of cation changes on the absorber layer and the solar cell properties of Cu2ZnSnSe4 (CZTSe). Furthermore, in this study, an all-vacuum method was adopted to prepare a cadmium-free bifacial CZTSe solar cell and conducted damp heat tests on the device. The findings indicate that the increase in the number of stacked metallic precursor layers suppresses secondary phase generation, t
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Yonga, François, Colince Welba, Abdouramani Dadjé, and Noël Djongyang. "New Approach of Multi-Cell Stacked Cell Inverter for Solar Photovoltaic System." Journal of Power and Energy Engineering 11, no. 01 (2023): 1–17. http://dx.doi.org/10.4236/jpee.2023.111001.

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38

Sumaryada, Tony, Siti Rohaeni, Nurlia Eka Damayanti, Heriyanto Syafutra, and Hendradi Hardhienata. "Simulating the Performance of Al0.3Ga0.7As/InP/Ge Multijunction Solar Cells under Variation of Spectral Irradiance and Temperature." Modelling and Simulation in Engineering 2019 (February 5, 2019): 1–9. http://dx.doi.org/10.1155/2019/5090981.

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The effect of spectral irradiance and temperature variation on the performance of the mechanically stacked Al0.3Ga0.7As/InP/Ge multijunction solar cells was investigated using a simulation approach. The incoming and transmitted spectra of each subcell were simulated by using MATLAB codes, while PC1D software did the power-producing simulations. The incoming solar radiation on the first subcell was a multiplication of AM1.5d spectrum with the value of spectral irradiance multiplication factor (SIMF) 1, 5, 10, 50, 100, 150, and 200 suns. Each set of simulation was done at 25°C, 50°C, 75°C, and 1
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39

Mizuno, Hidenori, Kikuo Makita, and Koji Matsubara. "Electrical and optical interconnection for mechanically stacked multi-junction solar cells mediated by metal nanoparticle arrays." Applied Physics Letters 101, no. 19 (2012): 191111. http://dx.doi.org/10.1063/1.4766339.

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Pal, Debashish. "Improved theoretical conversion efficiency of a dual junction GaInP/Si mechanically stacked photovoltaic cell." Renewable Energy and Sustainable Development 4, no. 2 (2018): 72. http://dx.doi.org/10.21622/resd.2018.04.2.072.

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Hasumi, Masahiko, Yoshihiro Ogawa, Kousuke Oshinari, Jun-ichi Shirakashi, Wakana Kubo, and Toshiyuki Sameshima. "Reduction in connecting resistivity and optical reflection loss at intermediate layer for mechanically stacked multijunction solar cells." Japanese Journal of Applied Physics 57, no. 10 (2018): 102301. http://dx.doi.org/10.7567/jjap.57.102301.

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Rahman, Rafi Ur, Hasnain Yousuf, Muhammad Quddamah Khokhar, et al. "Mechanically stacked bifacial III-V/HIT multijunction silicon solar cells optimized with spectral albedo for high efficiency." Solar Energy 293 (June 2025): 113458. https://doi.org/10.1016/j.solener.2025.113458.

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43

NODA, T., T. MANO, M. ELBORG, K. MITSUISHI, and K. SAKODA. "FABRICATION OF A GaAs/AlGaAs LATTICE-MATCHED QUANTUM DOT SOLAR CELL." Journal of Nonlinear Optical Physics & Materials 19, no. 04 (2010): 681–86. http://dx.doi.org/10.1142/s0218863510005583.

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We report on the fabrication of a lattice-matched GaAs/AlGaAs quantum dot solar cell (QDSC) in which a ten-stacked QD layer is embedded. The GaAs QDs were grown by droplet epitaxy. Photocurrent originating from the QDs was confirmed. Cross-sectional scanning transmission electron microscopy (TEM) revealed no apparent dislocation in the QD layers.
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Kim, Tae Gon, Sung Chul Kim, Jung Mok Jun, et al. "Amorphous silicon double stacked solar cell using low band gap A-Si bottom cell." Journal of Non-Crystalline Solids 137-138 (January 1991): 1161–64. http://dx.doi.org/10.1016/s0022-3093(05)80329-1.

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Moto, Akihiro, So Tanaka, Tatsuya Tanabe, and Shigenori Takagishi. "GaInP/GaAs and mechanically stacked GaInAs solar cells grown by MOCVD using TBAs and TBP as V-precursors." Solar Energy Materials and Solar Cells 66, no. 1-4 (2001): 585–92. http://dx.doi.org/10.1016/s0927-0248(00)00243-9.

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46

Ašmontas, Steponas, and Muhammad Mujahid. "Recent Progress in Perovskite Tandem Solar Cells." Nanomaterials 13, no. 12 (2023): 1886. http://dx.doi.org/10.3390/nano13121886.

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Tandem solar cells are widely considered the industry’s next step in photovoltaics because of their excellent power conversion efficiency. Since halide perovskite absorber material was developed, it has been feasible to develop tandem solar cells that are more efficient. The European Solar Test Installation has verified a 32.5% efficiency for perovskite/silicon tandem solar cells. There has been an increase in the perovskite/Si tandem devices’ power conversion efficiency, but it is still not as high as it might be. Their instability and difficulties in large-area realization are significant ch
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Sriphan, Saichon, Suwit Kiravittaya, Supachok Thainoi, and Somsak Panyakaew. "Effects of Temperature on I-V Characteristics of InAs/GaAs Quantum-Dot Solar Cells." Advanced Materials Research 1103 (May 2015): 129–35. http://dx.doi.org/10.4028/www.scientific.net/amr.1103.129.

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The current-voltage (I-V) characteristics of quantum-dot (QD) solar cells under illumination at various temperatures are presented. Stacked of high-density self-assembled InAs/GaAs QDs were incorporated into the Schottky-barrier-type solar cell structure. The I-V characteristics reveal that both short-circuit current and open-circuit voltage of the QD solar cell reduce when the measurement temperature increases. This result is unexpected and inconsistent with a basic solar cell theory where the temperature is believed to cause the enhancement of the short-circuit current. By considering the so
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Yonga, François, Colince Welba, Abdouramani Dadjé, and Noël Djongyang. "New Control Approach of Multicell Stacked Cell Inverter for Solar Photovoltaic System." International Journal of Photoenergy 2022 (April 11, 2022): 1–14. http://dx.doi.org/10.1155/2022/9619266.

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This paper presents the study, modelling, and simulation of the DCSVM (Duty Cycle Space Vector Modulation) control technique applied to a new inverter topology dedicated to isolated or grid-connected photovoltaic systems using the MATLAB/Simulink software. This inverter is based on the structures of a stacked multicell converter (SMC) and an H-bridge. This new topology allows the voltage stresses of the converter to be distributed among several switching cells. It also allows the input voltage to be divided into several fractions so that the number of switching power semiconductors is reduced.
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Savariraj, A. Dennyson, G. Rajendrakumar, Samayanan Selvam, et al. "Stacked Cu1.8S nanoplatelets as counter electrode for quantum dot-sensitized solar cell." RSC Adv. 5, no. 122 (2015): 100560–67. http://dx.doi.org/10.1039/c5ra20965j.

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Shen, Ling, Hongxi Li, Xianwen Meng, and Feng Li. "Transfer printing of fully formed microscale InGaP/GaAs/InGaNAsSb cell on Ge cell in mechanically-stacked quadruple-junction architecture." Solar Energy 195 (January 2020): 6–13. http://dx.doi.org/10.1016/j.solener.2019.11.046.

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