By Laurentiu Fara, Masafumi Yamaguchi
"Featuring a finest forged of the top photovoltaic scientists from world wide, this e-book addresses the basic demanding situations within the box and examines the fundamental basic dilemma of photovoltaic conversion"--Provided via publisher.
content material: New tendencies in sun cells / Masafumi Yamaguchi, Laurentiu Fara --
actual obstacles of photovoltaic conversion / Laurentiu Fara, Masafumi Yamaguchi --
Quantum good sunlight cells: physics, fabrics and expertise / Magdalena Lidia Ciurea, Ana-Maria Lepadatu, Ionel Stavarache --
Quantum confinement modeling and simulation for quantum good sun cells / Laurentiu Fara, Mihai Razvan Mitroi --
Analytical versions of bulk and quantum good sunlight cells and relevance of the radiative restrict / James P. Connolly --
Hybrid sun cells: fabrics and know-how / Corneliu Cincu, Aurel Diacon --
Polymer sunlight cells / Catalin Zaharia --
natural sun cells modeling and simulation / Mihai Razvan Mitroi, Laurentiu Fara, Andrei Galbeaza Moraru --
large excessive potency multi-junction sun cells and concentrator sun cells / Masafumi Yamaguchi --
Quantum dot sun cells / Yoshitaka Okada, Katsuhisa Yoshida, Yasushi Shoji --
Intermediate band sun cells: modeling and simulation / Pablo García-Linares ... [et al.] --
Phononic engineering for decent provider sun cells / Sana Laribi ... [et al.] --
The luminescent sunlight concentrator: advances, optimization, and outlook / Rahul Bose, Keith W.J. Barnham, Amanda J. Chatten --
clients and technique of improvement for complex sunlight cells / Laurentiu Fara, Masafumi Yamaguchi.
summary: "Featuring a most desirable forged of the best photovoltaic scientists from world wide, this ebook addresses the basic demanding situations within the box and examines the fundamental basic hindrance of photovoltaic conversion"--Provided by means of writer
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Extra info for Advanced solar cell materials, technology, modeling, and simulation
Bristol, UK: Institute of Physics Publishing. , & Yamaguchi, M. (2006). Paper. In Proceedings of the 4th World Conference on Photovoltaic Energy Conversion. New York, NY: IEEE. Nozik, A. J. (2002). Quantum dot solar cells. Physica E, Low-Dimensional Systems and Nanostructures, 14, 115. , & Shiotsuka, N. (2005). Paper. In Proceedings of the 31st IEEE Photovoltaic Specialists Conference. New York, NY: IEEE. , & Ohtani, M. (2005). Paper. In Proceedings of the 20th European Photovoltaic Solar Energy Conference.
The quantum confinement energy levels are located in the band gap (at 0 K, the fundamental quantum confinement level, and the energy level corresponding to the valence band maximum are occupied, so that they must coincide). Therefore, we will shift the zero of the quantum confinement energy and we will measure it from the top of the valence band: ε = εn (kx , ky ) + (2π 2 2 ) (m ⊥* t 2 ) 2 2 * 2 2 + (2π ) (m ⊥t ) (p − 1) (4) ≡ εn( ) (kx , ky ) + εp−1 . s Here εn( ) (kx , ky ) is the shifted band energy s and εp−1 is the quantum confinement energy level with the quantum number p (with ε0 ≡ 0).
Paper presented at the 31st IEEE Photovoltaic Specialists Conference. Miami, FL. , & Marti, A. (1997). Increasing the efficiency of ideal solar cells by photon induced transmissions at intermediate levels. Physical Review Letters, 78, 5014. , Bett, A. , & Dimroth, F. (2006). Paper. In Proceedings of the 21st European Photovoltaic Solar Energy Conference. Munich, Germany: WIP. , & Luque, A. ). (2003). Next generation photovoltaics: High efficiency through full spectrum utilization. Bristol, UK: Institute of Physics Publishing.