Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them

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spelling 6454 https://intelek.unisza.edu.my/intelek/pages/view.php?ref=6454 https://intelek.unisza.edu.my/intelek/pages/search.php?search=!collection407072 Restricted Document Conference Conference Paper application/pdf 7 1.6 Adobe Acrobat Pro DC 20 Paper Capture Plug-in amd 2017-01-19 11:34:46 1369-01-FH03-ESERI-17-11675.pdf UniSZA Private Access Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them Solar cells have been in focus for decades due to their capability to convert solar energy into electrical energy. Quantum dots sensitized solar cell (QDSC) gained much consideration due to their relatively simpler device structure and similarity to dye sensitized solar cell (DSSC). QDs are capable of delivering multiple electron per absorbed photon of sufficient energy, a phenomenon known as multi-exciton generation (MEG). The MEG effect makes QDSCs capable of achieving photovoltaics conversion efficiency (PCE) as high as 60 %. Regardless of the outstanding feature of QDs, QDSCs deliver much inferior practical PCE (~8.6 %) compared to DSSCs (~13 %). Density functional theory (DFT) calculations was engaged to shed some light on the problem in our previous work. Realistic QDs models were empirically developed using DFT and experimental results. Three parameters were concluded to have distinct effects on the photovoltaic (PV) properties of QDSCs. They are (i) the best size of QDs, (ii) ligand usage, and (iii) QDs size distribution; which commonly neglected by researchers. In this work, quantum dots – metal oxide semiconductor (MOS) conjugates were chemically developed; spectroscopically demonstrate various electron injection efficiency from QDs to MOS. Proceedings of National Workshop on Functional Material Universiti Malaya
spellingShingle Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
summary Solar cells have been in focus for decades due to their capability to convert solar energy into electrical energy. Quantum dots sensitized solar cell (QDSC) gained much consideration due to their relatively simpler device structure and similarity to dye sensitized solar cell (DSSC). QDs are capable of delivering multiple electron per absorbed photon of sufficient energy, a phenomenon known as multi-exciton generation (MEG). The MEG effect makes QDSCs capable of achieving photovoltaics conversion efficiency (PCE) as high as 60 %. Regardless of the outstanding feature of QDs, QDSCs deliver much inferior practical PCE (~8.6 %) compared to DSSCs (~13 %). Density functional theory (DFT) calculations was engaged to shed some light on the problem in our previous work. Realistic QDs models were empirically developed using DFT and experimental results. Three parameters were concluded to have distinct effects on the photovoltaic (PV) properties of QDSCs. They are (i) the best size of QDs, (ii) ligand usage, and (iii) QDs size distribution; which commonly neglected by researchers. In this work, quantum dots – metal oxide semiconductor (MOS) conjugates were chemically developed; spectroscopically demonstrate various electron injection efficiency from QDs to MOS.
title Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
title_full Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
title_fullStr Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
title_full_unstemmed Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
title_short Three mistakes we have made during fabrication of quantom dots solar cell: How can ypu learn from them
title_sort three mistakes we have made during fabrication of quantom dots solar cell: how can ypu learn from them