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The quantum well solar cell (QWSC) is a p - i - n solar cell with quantum wells in the intrinsic region. Previous work has shown that QWSCs have a greater open circuit voltage (Voc) than would be provided by a cell with the quantum well…

介观与纳米尺度物理 · 物理学 2010-06-08 James P. Connolly

The quantum well solar cell (QWSC) has been proposed as a route to higher efficiency than that attainable by homojunction devices. Previous studies have established that carriers escape the quantum wells with high efficiency in forward bias…

介观与纳米尺度物理 · 物理学 2010-06-10 James P. Connolly , Jenny Nelson , Keith W. J. Barnham , Ian Ballard , C. Roberts , J. S. Roberts , C. T. Foxon , .

The spectral response of quantum well solar cells (QWSCs) is well understood. We describe work on QWSC dark current theory which combined with SR theory yields a system efficiency. A methodology published for single quantum well (SQW)…

介观与纳米尺度物理 · 物理学 2010-06-10 James P. Connolly , Jenny Nelson , Ian Ballard , Keith W. J. Barnham , Carsten Rohr , Chris Button , John Roberts , Tom Foxon

The GaAs/AlGaAs materials system is well suited to multi-bandgap applications such as the multiple quantum well solar cell. GaAs quantum wells are inserted in the undoped AlGaAs active region of a pin structure to extend the absorption…

介观与纳米尺度物理 · 物理学 2016-06-14 J. P. Connolly , K. W. J. Barnham , J. Nelson , P. Griffin , G. Haarpaintner , C. Roberts , M. Pate , J. S. Roberts

Strain-balanced Quantum Well Solar Cells (SB- QWSCs) are radiatively dominated at concentrator current levels. Incorporating back surface mirrors on the back of the doped substrate leads to a reduction in this radiative recombination…

The quantum well solar cell (QWSC) has been proposed as a flexible means to ensuring current matching for tandem cells. This paper explores the further advantage afforded by the indication that QWSCs operate in the radiative limit because…

介观与纳米尺度物理 · 物理学 2010-06-10 J. P. Connolly , I. M. Ballard , K. W. J. Barnham , D. B. Bushnell , T. N. D. Tibbits , J. S. Roberts

Multijunction solar cell design is guided by both the theoretical optimal bandgap combination as well as the realistic limitations to materials with these bandgaps. For instance, triple-junction III-V multijunction solar cells commonly use…

The efficiency of GaAs nanowire solar cells can be significantly improved without any new processing steps or material requirements. We report coupled optoelectronic simulations of a GaAs nanowire (NW) solar cell with vertical p-i-n…

The InAs/InGaAs DWELL solar cell grown by MBE is a standard pin diode structure with six layers of InAs QDs embedded in InGaAs quantum wells placed within a 200-nm intrinsic GaAs region. The GaAs control wafer consists of the same pin…

介观与纳米尺度物理 · 物理学 2019-06-05 Tingyi Gu , Mohamed A. El-Emawy , Kai Yang , Andreas Stintz , Luke F. Lester

Numerical simulation of a solar cell can provide various information that can be useful to maximize its power conversion efficiency (PCE). In that respect we carried out a set of numerical simulation using AFORS-HET simulation program.…

光学 · 物理学 2024-05-13 S. M. Iftiquar , J. Yi

Optical and electrical characteristics of AlGaAs lasers with separate confinement heterostructures are modeled by using Synopsys's Sentaurus TCAD, and open source software. The results for cases of 2-QW (2 Quantum Wells) and 3-QW structures…

材料科学 · 物理学 2011-09-01 Z. Koziol , S. I. Matyukhin

We used AlGaSb/AlGaAs material system for a theoretical study of photovoltaic performance of the proposed GaAs-based solar cell in which the type-II quantum dot (QDs) absorber is spatially separated from the depletion region. Due to…

介观与纳米尺度物理 · 物理学 2015-06-15 A. Kechiantz , A. Afanasev

We present a multiscale approach for modeling an intermediate-band solar cell based on a GaAs-GaAlAs quantum dot superlattice of cubic symmetry. Our framework combines high-accuracy theoretical calculations of the superlattice band…

介观与纳米尺度物理 · 物理学 2025-11-24 Naira Petrosyan , Lilit Yeganyan , Aram Manaselyan , Vram Mughnetsyan , Vidar Gudmundsson , Albert Kirakosyan

In this paper, a novel lateral quantum well solar cell has been introduced, and the structural parameters effects of these nano-structures on the performance of the device have been investigated. For modeling, the continuity equation has…

介观与纳米尺度物理 · 物理学 2016-11-08 M. Rashidi , Asghar Asgari

A coupled optoelectronic model was implemented along with the differential evolution algorithm to assess the efficacy of grading the bandgap of the CZTSSe layer for enhancing the power conversion efficiency of thin-film CZTSSe solar cells.…

应用物理 · 物理学 2020-04-07 Faiz Ahmad , Akhlesh Lakhtakia , Tom H. Anderson , Peter B. Monk

We report thin-film InAs/GaAs quantum dot (QD) solar cells with $n-i-p{+}$ deep junction structure and planar back reflector fabricated by epitaxial lift-off (ELO) of full 3-inch wafers. External quantum efficiency measurements demonstrate…

应用物理 · 物理学 2018-05-28 F Cappelluti , D Kim , M van Eerden , AP Cédola , T Aho , G Bissels , F Elsehrawy , J Wu , H Liu , P Mulder , G Bauhuis , J Schermer , T Niemi , M Guina

Solar cells employing quantum wells can enhance the light absorption but suffer from the difficulty in photogenerated carrier extraction. Here, we analyzed the spectral response and the photocarrier collection mechanism of p-i-n multiple…

应用物理 · 物理学 2020-06-02 Kasidit Toprasertpong , Tomoyuki Inoue , Yoshiaki Nakano , Masakazu Sugiyama

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

A high theoretical efficiency of 47.2% was achieved by a novel combination of In0.51Ga0.49P, GaAs, In0.24Ga0.76As and In0.19Ga0.81Sb subcell layers in a simulated quadruple junction solar cell under 1 sun concentration. The electronic…

应用物理 · 物理学 2019-05-21 Mohammad Jobayer Hossain , Bibek Tiwari , Indranil Bhattacharya

The fundamental efficiency limit of a single bandgap solar cell is about 31% at one sun with a bandgap of about Eg = 1.35 eV (1), determined by the trade-off of maximising current with a smaller bandgap and voltage with a larger bandgap.…

介观与纳米尺度物理 · 物理学 2016-06-17 C Rohr , P Abbott , I M Ballard , D B Bushnell , J P Connolly , N J Ekins- Daukes , K W J Barnham
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