Solution-Processed ZnCdS Buffer Layers for Vapor Transport-Deposited SnS Thin-Film Solar Cells: Achieving High Open-Circuit Voltage.

ACS Appl Mater Interfaces

Department of Materials Science and Engineering, and Optoelectronics Convergence Research Center , Chonnam National University, Gwangju 61186 , Republic of Korea.

Published: February 2020

As an alternative buffer material to CdS, ZnCdS buffer layers for vapor transport-deposited SnS thin-film solar cells (TFSCs) were fabricated using the successive ionic layer adsorption and reaction (SILAR) method. Varying the Zn-to-Cd ratio resulted in a series of ZnCdS thin films with controllable band gaps in the range of 2.40-3.65 eV. The influence of the Zn-to-Cd ratio on the cell performance was investigated in detail. The ZnCdS buffer layer was found to be the optimal composition for SnS TFSCs, and a record open-circuit voltage () of 0.405 V was achieved with an efficiency of 3.72%, whereas the SILAR-CdS buffer layer rendered a of 0.324 V. The improvement in when using the ZnCdS buffer layer was corroborated by the spike-type conduction band offset of 0.35 eV with the SnS absorber, as revealed by the X-ray photoelectron spectroscopy analysis. In addition, minimized interfacial recombination at the SnS/ZnCdS heterojunction was confirmed by the temperature-dependent analysis under illuminated conditions.

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http://dx.doi.org/10.1021/acsami.9b14329DOI Listing

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