Back to results
Bibliographic record · Consultation and access
Artículo

Advancing colloidal quantum dot photovoltaic technology

Cheng Yan et al · Wiley · 2016

Open access available
Quick overview. Review the resource’s basic details, then access the content using the main button. This page shows only the information needed to identify, cite, and open the work.

Resource access

Open the content from the main option or choose another available source.

DOAJ DOAJ Articles
Entrar por DOAJ
Main access

Open access available

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Open resource

Summary

Descripción general del contenido del recurso.

Colloidal quantum dots (CQDs) are attractive materials for solar cells due to their low cost, ease of fabrication and spectral tunability. Progress in CQD photovoltaic technology over the past decade has resulted in power conversion efficiencies approaching 10%. In this review, we give an overview of this progress, and discuss limiting mechanisms and paths for future improvement in CQD solar cell technology.We briefly summarize nanoparticle synthesis and film processing methods and evaluate the optoelectronic properties of CQD films, including the crucial role that surface ligands play in materials performance. We give an overview of device architecture engineering in CQD solar cells. The compromise between carrier extraction and photon absorption in CQD photovoltaics is analyzed along with different strategies for overcoming this trade-off. We then focus on recent advances in absorption enhancement through innovative device design and the use of nanophotonics. Several light-trapping schemes, which have resulted in large increases in cell photocurrent, are described in detail. In particular, integrating plasmonic elements into CQD devices has emerged as a promising approach to enhance photon absorption through both near-field coupling and far-field scattering effects. We also discuss strategies for overcoming the single junction efficiency limits in CQD solar cells, including tandem architectures, multiple exciton generation and hybrid materials schemes. Finally, we offer a perspective on future directions for the field and the most promising paths for achieving higher device efficiencies.

How to cite

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, C. Y. E. (2016). Advancing colloidal quantum dot photovoltaic technology. https://doi.org/10.1515/nanoph-2016-0017

MLA

al, Cheng Yan et. "Advancing colloidal quantum dot photovoltaic technology." 2016. https://doi.org/10.1515/nanoph-2016-0017.

Chicago

al, Cheng Yan et. 2016. "Advancing colloidal quantum dot photovoltaic technology.". https://doi.org/10.1515/nanoph-2016-0017.

Harvard

al, C. Y. E. 2016, Advancing colloidal quantum dot photovoltaic technology, Wiley, available at: https://doi.org/10.1515/nanoph-2016-0017 [Accessed 5 Aug. 2026].

Share and print

Save the record, copy its permanent link, or print it as a PDF.

Export reference

You can export the record in common formats for use in a reference manager.

Resource details

Bibliographic information to help confirm that this is the correct material.

Title
Advancing colloidal quantum dot photovoltaic technology
Author / contributors
Cheng Yan et al
Publisher
Wiley
Publication year
2016
ISSN
2192-8606
ISSN
2192-8606
Language
English

Subjects

Explore related resources through these subjects.

Copied