TY - JOUR
T1 - Energy Yield Analysis of Multiterminal Si-Based Tandem Solar Cells
AU - Schulte-Huxel, Henning
AU - Silverman, Timothy J.
AU - Deceglie, Michael G.
AU - Friedman, Daniel J.
AU - Tamboli, Adele C.
N1 - Funding information: Manuscript received March 18, 2018; revised May 17, 2018; accepted June 3, 2018. Date of publication July 6, 2018; date of current version August 20, 2018. The work of H. Schulte-Huxel was supported by the Research Fellowship by Deutsche Forschungsgemeinschaft Grant SCHU 3206/1-1. This work was supported by the Alliance for Sustainable Energy, LLC, the manager and operator of the National Renewable Energy Laboratory for the U.S. Department of Energy under Contract DE-AC36-08GO28308. This work was also supported by the U.S. Department of Energy Office of Energy Efficiency and Renewable Energy Solar Energy Technologies Office under Contract DE-EE00030299. (Corresponding author: Henning Schulte-Huxel.) H. Schulte-Huxel was with the National Renewable Energy Laboratory, Golden, CO 80401 USA. He is now with the Institute for Solar Energy Research Hamelin, 31860 Emmerthal, Germany (e-mail:,[email protected]).
PY - 2018/9
Y1 - 2018/9
N2 - We present a model for a yield analysis of tandem devices consisting of Si bottom cells with III-V top cells. It accounts for the spectral properties of the subcells as well as their reduced operating temperature due to increased efficiency and luminescent coupling. Inputs are the experimental I-V and QE data of the subcells (e.g., available from laboratory prototypes) and the irradiance-dependent module temperature of the bottom cell. We apply the model to compare two types of tandem cells, GaInP and GaAs top cells on Si bottom cells. The impact of the temperature model, compared to a constant temperature, shows a relative change in energy yield of up to 2.7%rel. Including luminescent coupling for GaAs/Si devices with two terminals, increases the energy yield by 34.0%rel. This is still 34.2%rel less energy yielded than for GaInP/Si two-terminal devices. The performance of the GaInP/Si devices can be improved by 5.8%rel using three-terminal devices with back-contacted bottom cells instead of a two-terminal configuration under the assumption of a cell string with voltage matching of one top cell with two bottom cells. For GaInP/Si, the three-terminal device performs similarly to the four-terminal device, enabling the integration of monolithic tandem cells into modules at comparably high efficiencies.
AB - We present a model for a yield analysis of tandem devices consisting of Si bottom cells with III-V top cells. It accounts for the spectral properties of the subcells as well as their reduced operating temperature due to increased efficiency and luminescent coupling. Inputs are the experimental I-V and QE data of the subcells (e.g., available from laboratory prototypes) and the irradiance-dependent module temperature of the bottom cell. We apply the model to compare two types of tandem cells, GaInP and GaAs top cells on Si bottom cells. The impact of the temperature model, compared to a constant temperature, shows a relative change in energy yield of up to 2.7%rel. Including luminescent coupling for GaAs/Si devices with two terminals, increases the energy yield by 34.0%rel. This is still 34.2%rel less energy yielded than for GaInP/Si two-terminal devices. The performance of the GaInP/Si devices can be improved by 5.8%rel using three-terminal devices with back-contacted bottom cells instead of a two-terminal configuration under the assumption of a cell string with voltage matching of one top cell with two bottom cells. For GaInP/Si, the three-terminal device performs similarly to the four-terminal device, enabling the integration of monolithic tandem cells into modules at comparably high efficiencies.
KW - Energy yield calculations
KW - luminescent coupling
KW - Si-based tandem solar cells
UR - https://www.scopus.com/pages/publications/85049695657
U2 - 10.1109/JPHOTOV.2018.2846520
DO - 10.1109/JPHOTOV.2018.2846520
M3 - Article
AN - SCOPUS:85049695657
SN - 2156-3381
VL - 8
SP - 1376
EP - 1383
JO - IEEE Journal of Photovoltaics
JF - IEEE Journal of Photovoltaics
IS - 5
M1 - 8405753
ER -