Issue 35, 2014

Thermally-derived liquid phase involving multiphase Cu(In,Ga)Se2 nanoparticles for solution-processed inorganic photovoltaic devices

Abstract

In the past decade, wet chemical strategies for solution-based Cu(In,Ga)Se2 (CI(G)Se) photovoltaic devices have gained a tremendous amount of attention in solar-cell research fields. In particular, nanoparticles allowing for liquid-phase densification have been recognized as viable candidates for advancements in photovoltaic devices. In this study, multiphase CIGSe nanoparticles are synthesized by the microwave-assisted solvothermal method, in which the chemically incorporated CuSe2 and Se phases form liquid phases for inducing vigorous reactions at elevated temperatures. The morphological/crystalline structural properties of multiphase nanoparticles are analyzed, in conjunction with the temperature dependent evolution in multiphase nanoparticle-incorporating functional layers. Furthermore, we examine physical parameters including the cell performance, shunt conductance, and series resistance for multiphase CIGSe nanoparticle-derived solar cells, from which the cell performance-limiting factors are discussed.

Graphical abstract: Thermally-derived liquid phase involving multiphase Cu(In,Ga)Se2 nanoparticles for solution-processed inorganic photovoltaic devices

Supplementary files

Article information

Article type
Paper
Submitted
22 Jan 2014
Accepted
03 Apr 2014
First published
08 Apr 2014

RSC Adv., 2014,4, 18453-18459

Author version available

Thermally-derived liquid phase involving multiphase Cu(In,Ga)Se2 nanoparticles for solution-processed inorganic photovoltaic devices

Y. Seo, Y. Jo, Y. Choi, K. Yoon, B. Ryu, S. Ahn and S. Jeong, RSC Adv., 2014, 4, 18453 DOI: 10.1039/C4RA00623B

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