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相关论文: Ideal Solar Cell Efficiencies

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The Shockley-Queisser model is a landmark in photovoltaic device analysis by defining an ideal situation as reference for actual solar cells. However, the model and its implications are easily misunderstood. Thus, we present a guide to help…

应用物理 · 物理学 2019-07-26 Jean-Francois Guillemoles , Thomas Kirchartz , David Cahen , Uwe Rau

The Shockley-Queisser (SQ) limit, introduced by W. Shockley and H. J. Queisser in 1961, is the most well-established fundamental efficiency limit for single-junction photovoltaic solar cells. For widely-studied semiconductors such as Si,…

应用物理 · 物理学 2021-06-09 Qian Zhou , Arfa Karani , Yaxiao Lian , Baodan Zhao , Richard H. Friend , Dawei Di

The ideal solar cell conversion efficiency limit known as the Shockley-Queisser (SQ) limit, which is based on a detailed balance between absorption and radiation, has long been a target for solar cell researchers. While the theory for this…

应用物理 · 物理学 2018-11-07 Kenji Kamide , Toshimitsu Mochizuki , Hidefumi Akiyama , Hidetaka Takato

The Shockley-Queisser (SQ) limit provides a convenient metric for predicting light-to-electricity conversion efficiency of a solar cell based on the band gap of the light-absorbing layer. In reality, few materials approach this radiative…

计算物理 · 物理学 2020-05-22 Sunghyun Kim , José A. Márquez , Thomas Unold , Aron Walsh

The Shockley-Queisser limit describes the maximum solar energy conversion efficiency achievable for a particular material and is the standard by which new photovoltaic technologies are compared. This limit is based on the principle of…

光学 · 物理学 2014-12-04 Yunlu Xu , Tao Gong , Jeremy N. Munday

Photovoltaic materials are recognized for their potential as sustainable energy sources that enable the conversion between light and electrical energy. However, solar cells have been unable to surpass the theoretical limit of 32%, known as…

应用物理 · 物理学 2024-06-18 Jeonggyu Hwang

The Shockley-Queisser (S-Q) theory defines the thermodynamic upper limits for Jsc, Voc, FF, and efficiency of a solar cell. The classical calculation assumes an abrupt onset of absorption at the band-edge, perfect absorption for all…

综合物理 · 物理学 2015-07-02 M. Ryyan Khan , Peter Bermel , Muhammad A. Alam

The Shockley and Queisser limit, a well-known efficiency limit for a solar cell, is based on unrealistic physical assumptions and its maximum limit is seriously overestimated. To understand the power loss mechanisms of record-efficiency…

应用物理 · 物理学 2019-08-28 Yoshitsune Kato , Shohei Fujimoto , Masayuki Kozawa , Hiroyuki Fujiwara

Maximum efficiency of ideal single-junction photovoltaic (PV) cells is limited to 33% (for one sun illumination) by intrinsic losses such as band edge thermalization, radiative recombination, and inability to absorb below-bandgap photons.…

光学 · 物理学 2015-06-17 Svetlana V. Boriskina , Gang Chen

Improving the conversion efficiency of solar energy to electricity is most important to mankind. For single-junction photovoltaic solar-cells, the Shockley-Queisser thermodynamic efficiency limit is extensively due to the heat dissipation,…

光学 · 物理学 2015-06-11 Assaf Manor , Leopoldo L. Martin , Carmel Rotschild

Absorbed sunlight in a solar cell produces electrons and holes. But, at the open circuit condition, the carriers have no place to go. They build up in density and, ideally, they emit external fluorescence that exactly balances the incoming…

光学 · 物理学 2013-08-02 Owen D. Miller , Eli Yablonovitch , Sarah R. Kurtz

Light management is of great importance to photovoltaic cells, as it determines the fraction of incident light entering the device. An optimal pn-junction combined with an optimal light absorption can lead to a solar cell efficiency above…

Many advanced solar cell concepts propose surpassing the Shockley Queisser (SQ) limit by introducing multiple quasi-Fermi level separations that are arranged in series and/or in parallel. Exceeding the SQ limit with any parallel arrangement…

应用物理 · 物理学 2019-11-06 Andreas Pusch , Nicholas J. Ekins Daukes

The theoretical maximum efficiency of a solar cell is typically characterized by a detailed balance of optical absorption and emission for a semiconductor in the limit of unity radiative efficiency and an ideal step-function response for…

应用物理 · 物理学 2021-03-09 Joeson Wong , Stefan T. Omelchenko , Harry A. Atwater

The purpose of this work is to look for a practical structure for application of quantum dots (QD) in solar cells in order to enhance sub-band gap photon absorption. We focuse on a stack of strain-compensated GaSb/GaAs type-II QDs. We…

介观与纳米尺度物理 · 物理学 2014-10-17 A. Kechiantz , A. Afanasev , J. -L. Lazzari

The photovoltaic solar cell is a mature technology, with silicon-based technologies deployed at scale, yet current technologies are limited by the Shockley-Queisser thermodynamic limit, known since the early 1960s. The single-junction…

材料科学 · 物理学 2026-01-26 Gabriel J. Man

In this study, effects of the shell material and confinement type on the conversion efficiency of the core/shell quantum dot nanocrystal (QDNC) solar cells have been investigated in a detail manner. For this purpose, the conventional, i.e…

应用物理 · 物理学 2018-04-18 Mehmet Sahin

It is currently possible to fabricate crystalline silicon solar cells with the absorber thickness ranging from a few hundreds of micrometers (conventional wafer-based cells) to devices as thin as $1\,\mu\mathrm{m}$. In this work, we use a…

光学 · 物理学 2015-05-18 Piotr Kowalczewski , Lucio Claudio Andreani

This paper reviews both experimental and theoretical work on nanostructures showing high quantum yields due to the phenomenon of multiple exciton generation. It outlines the aims and barriers to progress in identifying further such…

介观与纳米尺度物理 · 物理学 2018-06-06 Nicholas Siemons , Alessio Serafini

Since the photoconversion efficiency $\eta$ of the silicon-based solar cells (SCs) under laboratory conditions is approaching the theoretical fundamental limit, further improvement of their performance requires theoretical modeling and/or…

材料科学 · 物理学 2024-09-04 V. P. Kostylyov , A. V. Sachenko , M. Evstigneev , I. O. Sokolovskyi , A. I. Shkrebtii
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