Literature DB >> 31595913

Efficient light harvesting in hybrid quantum dot-interdigitated back contact solar cells via resonant energy transfer and luminescent downshifting.

Chirenjeevi Krishnan1, Thomas Mercier1, Tasmiat Rahman1, Giacomo Piana2, Mael Brossard3, Timur Yagafarov3, Alexander To4, Michael E Pollard4, Peter Shaw1, Darren M Bagnall5, Bram Hoex4, Stuart A Boden1, Pavlos G Lagoudakis6, Martin D B Charlton1.   

Abstract

In this paper, we propose a hybrid quantum dot (QD)/solar cell configuration to improve performance of interdigitated back contact (IBC) silicon solar cells, resulting in 39.5% relative boost in the short-circuit current (JSC) through efficient utilisation of resonant energy transfer (RET) and luminescent downshifting (LDS). A uniform layer of CdSe1-xSx/ZnS quantum dots is deposited onto the AlOx surface passivation layer of the IBC solar cell. QD hybridization is found to cause a broadband improvement in the solar cell external quantum efficiency. Enhancement over the QD absorption wavelength range is shown to result from LDS. This is confirmed by significant boosts in the solar cell internal quantum efficiency (IQE) due to the presence of QDs. Enhancement over the red and near-infrared spectral range is shown to result from the anti-reflection properties of the QD layer coating. A study on the effect of QD layer thickness on solar cell performance was performed and an optimised QD layer thickness was determined. Time-resolved photoluminescence (TRPL) spectroscopy was used to investigate the photoluminescence dynamics of the QD layer as a function of AlOx spacer layer thickness. RET can be evoked between the QD and Si layers for very thin AlOx spacer layers, with RET efficiencies of up to 15%. In the conventional LDS architecture, down-converters are deposited on the surface of an optimised anti-reflection layer, providing relatively narrowband enhancement, whereas the QDs in our hybrid architecture provide optical enhancement over the broadband wavelength range, by simultaneously utilising LDS, RET-mediated carrier injection, and antireflection effects, resulting in up to 40% improvement in the power conversion efficiency (PCE). Low-cost synthesis of QDs and simple device integration provide a cost-effective solution for boosting solar cell performance.

Entities:  

Year:  2019        PMID: 31595913     DOI: 10.1039/c9nr04003j

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  2 in total

1.  Nanoengineering InP Quantum Dot-Based Photoactive Biointerfaces for Optical Control of Neurons.

Authors:  Onuralp Karatum; Mohammad Mohammadi Aria; Guncem Ozgun Eren; Erdost Yildiz; Rustamzhon Melikov; Shashi Bhushan Srivastava; Saliha Surme; Itir Bakis Dogru; Houman Bahmani Jalali; Burak Ulgut; Afsun Sahin; Ibrahim Halil Kavakli; Sedat Nizamoglu
Journal:  Front Neurosci       Date:  2021-06-23       Impact factor: 4.677

Review 2.  Recent Advances in Colloidal Quantum Dots or Perovskite Quantum Dots as a Luminescent Downshifting Layer Embedded on Solar Cells.

Authors:  Annada Sankar Sadhu; Yu-Ming Huang; Li-Yin Chen; Hao-Chung Kuo; Chien-Chung Lin
Journal:  Nanomaterials (Basel)       Date:  2022-03-16       Impact factor: 5.076

  2 in total

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