Efficiency of InN/InGaN/GaN Intermediate-Band Solar Cell under the Effects of Hydrostatic Pressure, In-Compositions, Built-in-Electric Field, Confinement, and Thickness

被引:6
作者
Abboudi, Hassan [1 ]
EL Ghazi, Haddou [1 ,2 ]
En-nadir, Redouane [1 ]
Kabatas, Mohamed A. Basyooni-M. [3 ,4 ,5 ]
Jorio, Anouar [1 ]
Zorkani, Izeddine [1 ]
机构
[1] Mohamed Ben Abdellah Univ, Fac Sci, LPS, Fes 30000, Morocco
[2] Hassan II Univ, ENSAM Lab, 2SMPI Grp, Nile 150, Casablanca 20670, Morocco
[3] Delft Univ Technol, Dept Precis & Microsyst Engn, Dynam Micro & Nano Syst Grp, Mekelweg 2, NL-2628 CD Delft, Netherlands
[4] Natl Res Inst Astron & Geophys, Solar & Space Res Dept, Solar Res Lab, Cairo 11421, Egypt
[5] Selcuk Univ, Grad Sch Appl & Nat Sci, Dept Nanotechnol & Adv Mat, TR-42030 Konya, Turkiye
关键词
IBSC; III-nitrides; efficiency; semi-graded potential; built-in field; thickness; PIEZOELECTRIC POLARIZATION; OPTICAL-ABSORPTION; QUANTUM-WELLS; TEMPERATURE; TRANSITIONS; NITRIDES; GROWTH; ALGAN;
D O I
10.3390/nano14010104
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This paper presents a thorough numerical investigation focused on optimizing the efficiency of quantum-well intermediate-band solar cells (QW-IBSCs) based on III-nitride materials. The optimization strategy encompasses manipulating confinement potential energy, controlling hydrostatic pressure, adjusting compositions, and varying thickness. The built-in electric fields in (In, Ga)N alloys and heavy-hole levels are considered to enhance the results' accuracy. The finite element method (FEM) and Python 3.8 are employed to numerically solve the Schrodinger equation within the effective mass theory framework. This study reveals that meticulous design can achieve a theoretical photovoltaic efficiency of quantum-well intermediate-band solar cells (QW-IBSCs) that surpasses the Shockley-Queisser limit. Moreover, reducing the thickness of the layers enhances the light-absorbing capacity and, therefore, contributes to efficiency improvement. Additionally, the shape of the confinement potential significantly influences the device's performance. This work is critical for society, as it represents a significant advancement in sustainable energy solutions, holding the promise of enhancing both the efficiency and accessibility of solar power generation. Consequently, this research stands at the forefront of innovation, offering a tangible and impactful contribution toward a greener and more sustainable energy future.
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页数:24
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