First-principles energy band calculation of Ruddlesden–Popper compound Sr3Sn2O7 using modified Becke–Johnson exchange potential

2015 ◽  
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Shigenori Matsushima ◽  
Hiroyuki Nakamura ◽  
Masao Arai ◽  
...  
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Chao-Nan Xu

2001 ◽  
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Takumi Tanizaki ◽  
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Masao Arai

2007 ◽  
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Kenji Yamada ◽  
Hiroyuki Nakamura ◽  
...  

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Yuki OBUKURO ◽  
Shigenori MATSUSHIMA

2003 ◽  
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Kenji Obata ◽  
Hiroyuki Nakamura ◽  
Masao Arai ◽  
Kenkichiro Kobayashi

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2010 ◽  
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Hiroyuki Nakamura ◽  
Masao Arai ◽  
Chao-Nan Xu

2010 ◽  
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pp. 385-389 ◽  
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Hiroyuki Nakamura ◽  
Shin’ichirou Ishii ◽  
Kenji Yamada ◽  
Shigenori Matsushima ◽  
Masao Arai ◽  
...  

2021 ◽  
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Ghulam Murtaza ◽  
Xin He ◽  
Neeraj Kulhari ◽  
...  

AbstractThe highly successful PBE functional and the modified Becke–Johnson exchange potential were used to calculate the structural, electronic, and optical properties of the vacancy-ordered double perovskites A2BX6 (A = Rb, Cs; B = Sn, Pd, Pt; X = Cl, Br, and I) using the density functional theory, a first principles approach. The convex hull approach was used to check the thermodynamic stability of the compounds. The calculated parameters (lattice constants, band gap, and bond lengths) are in tune with the available experimental and theoretical results. The compounds, Rb2PdBr6 and Cs2PtI6, exhibit band gaps within the optimal range of 0.9–1.6 eV, required for the single-junction photovoltaic applications. The photovoltaic efficiency of the studied materials was assessed using the spectroscopic-limited-maximum-efficiency (SLME) metric as well as the optical properties. The ideal band gap, high dielectric constants, and optimum light absorption of these perovskites make them suitable for high performance single and multi-junction perovskite solar cells.


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