The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects

Commercial solar cells have a power conversion efficiency (PCE) in the range of 10–22% with different light absorbers. Graphene, with demonstrated unique structural, physical, and electrical properties, is expected to bring the positive effects on the development of thin film solar cells. Investigat...

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Main Authors: Zhengqi Shi, Ahalapitiya H. Jayatissa
Format: Article
Language:English
Published: MDPI AG 2017-12-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/11/1/36
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spelling doaj-b3939621bf3a4f32a08181b88b2e0aaa2020-11-24T22:04:11ZengMDPI AGMaterials1996-19442017-12-011113610.3390/ma11010036ma11010036The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future ProspectsZhengqi Shi0Ahalapitiya H. Jayatissa1Nanotechnology and MEMS Laboratory, Department of Mechanical, Industrial, and Manufacturing Engineering (MIME), University of Toledo, Toledo, OH 43606, USANanotechnology and MEMS Laboratory, Department of Mechanical, Industrial, and Manufacturing Engineering (MIME), University of Toledo, Toledo, OH 43606, USACommercial solar cells have a power conversion efficiency (PCE) in the range of 10–22% with different light absorbers. Graphene, with demonstrated unique structural, physical, and electrical properties, is expected to bring the positive effects on the development of thin film solar cells. Investigations have been carried out to understand whether graphene can be used as a front and back contacts and active interfacial layer in solar cell fabrication. In this review, the current progress of this research is analyzed, starting from the graphene and graphene-based Schottky diode. Also, the discussion was focused on the progress of graphene-incorporated thin film solar cells that were fabricated with different light absorbers, in particular, the synthesis, fabrication, and characterization of devices. The effect of doping and layer thickness of graphene on PCE was also included. Currently, the PCE of graphene-incorporated bulk-heterojunction devices have enhanced in the range of 0.5–3%. However, device durability and cost-effectiveness are also the challenging factors for commercial production of graphene-incorporated solar cells. In addition to the application of graphene, graphene oxides have been also used in perovskite solar cells. The current needs and likely future investigations for graphene-incorporated solar cells are also discussed.https://www.mdpi.com/1996-1944/11/1/36graphenethin film solar cellefficiencytop contactsback contacts
collection DOAJ
language English
format Article
sources DOAJ
author Zhengqi Shi
Ahalapitiya H. Jayatissa
spellingShingle Zhengqi Shi
Ahalapitiya H. Jayatissa
The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
Materials
graphene
thin film solar cell
efficiency
top contacts
back contacts
author_facet Zhengqi Shi
Ahalapitiya H. Jayatissa
author_sort Zhengqi Shi
title The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
title_short The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
title_full The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
title_fullStr The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
title_full_unstemmed The Impact of Graphene on the Fabrication of Thin Film Solar Cells: Current Status and Future Prospects
title_sort impact of graphene on the fabrication of thin film solar cells: current status and future prospects
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2017-12-01
description Commercial solar cells have a power conversion efficiency (PCE) in the range of 10–22% with different light absorbers. Graphene, with demonstrated unique structural, physical, and electrical properties, is expected to bring the positive effects on the development of thin film solar cells. Investigations have been carried out to understand whether graphene can be used as a front and back contacts and active interfacial layer in solar cell fabrication. In this review, the current progress of this research is analyzed, starting from the graphene and graphene-based Schottky diode. Also, the discussion was focused on the progress of graphene-incorporated thin film solar cells that were fabricated with different light absorbers, in particular, the synthesis, fabrication, and characterization of devices. The effect of doping and layer thickness of graphene on PCE was also included. Currently, the PCE of graphene-incorporated bulk-heterojunction devices have enhanced in the range of 0.5–3%. However, device durability and cost-effectiveness are also the challenging factors for commercial production of graphene-incorporated solar cells. In addition to the application of graphene, graphene oxides have been also used in perovskite solar cells. The current needs and likely future investigations for graphene-incorporated solar cells are also discussed.
topic graphene
thin film solar cell
efficiency
top contacts
back contacts
url https://www.mdpi.com/1996-1944/11/1/36
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