Cu nanoparticles enable plasmonic-improved silicon photovoltaic devices


Autoria(s): Souza, Michele L. de; Corio, Paola; Brolo, Alexandre G.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

05/11/2013

05/11/2013

2012

Resumo

This work examines the effect of copper nanoparticles (Cu NPs) on the photocurrent efficiency of silicon photovoltaic (Si PV) devices. An optimized synthesis of stable Cu NPs is reported together with a procedure for their immobilization on the Si PV surface. A comprehensive analysis of the photocurrent and power dependence of the Cu NPs surface coverage and size is presented. A decrease in photoconversion was observed for wavelengths shorter than similar to 500 nm, due to the Cu interband absorption. In the low surface coverage limit, where the level of aggregation was found to be low, the surface plasmon resonance absorption dominates leading to a modest effect on the photocurrent response. As the number of aggregates increased with the surface coverage, the photocurrent efficiency also increased, and a maximum enhancement power conversion of 16% was found for a 54 +/- 6 NPs per mu m(2) PV cell. This enhancement was attributed to SPR light scattering and trapping into the Si PV device. Higher surface coverage yielded numerous aggregates which acted as a bulk coating and caused a decrease in both photocurrent and power measurements.

Department of Foreign Affairs and International Trade Canada (DFAIT) through the Emerging Leaders in the Americas (ELAP) program

Department of Foreign Affairs and International Trade Canada (DFAIT) through the Emerging Leaders in the Americas (ELAP) program

CIAMFAPESP program

CIAM-FAPESP program

CNPq

CNPq

NSERC

NSERC

University of Victoria

University of Victoria

Identificador

PHYSICAL CHEMISTRY CHEMICAL PHYSICS, CAMBRIDGE, v. 14, n. 45, pp. 15722-15728, APR, 2012

1463-9076

http://www.producao.usp.br/handle/BDPI/41018

10.1039/c2cp43475j

http://dx.doi.org/10.1039/c2cp43475j

Idioma(s)

eng

Publicador

ROYAL SOC CHEMISTRY

CAMBRIDGE

Relação

PHYSICAL CHEMISTRY CHEMICAL PHYSICS

Direitos

openAccess

Copyright ROYAL SOC CHEMISTRY

Palavras-Chave #SOLAR-CELLS #OPTICAL-PROPERTIES #SPECTROSCOPY #FILMS #SIZE #CHEMISTRY, PHYSICAL #PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
Tipo

article

original article

publishedVersion