Voltage loss mitigation in triple-cation perovskite solar cells through 2D-BA2PbI4 interface passivation: A numerical investigation towards tandem architectures

Interfacial defect-mediated recombination is a key limitation to achieving high open-circuit voltage (V OC ) in three-dimensional triple-cation perovskite (3D-TCP) solar cells. Herein, a comprehensive device passivation strategy is employed on Cs 0.03 FA 0.945 MA 0.025 Pb(I 0.975 Br 0.025 ) 3 using the physics-based SCAPS-1D simulator to investigate the influence of device optimisation, interface passivation, and tandem integration. We first examined a control device using absorber-thickness engineering, followed by a systematic sensitivity analysis that included bulk defect density, series and shunt resistances, together with temperature-dependent stability analysis. The optimised control device achieved a V OC of 1078.7 mV, with a significant total voltage loss of 491.3 mV. This confirmed that interfacial recombination is the main performance-limiting factor. To address this issue, we subsequently introduced a two-dimensional BA 2 PbI 4 Ruddlesden-Popper perovskite layer at the 3D-TCP/HTL interface. This addition helped to passivate interfacial defects and suppress nonradiative recombination, leading to a remarkable increase in V OC to 1134.0 mV. Additionally, the total voltage loss decreases significantly to 436.0 mV. Further, these optimised standalone control and passivated devices have been employed to simulate two-terminal (2T) monolithic and four-terminal (4T) mechanically stacked tandem configurations. The best simulated 2T monolithic and 4T mechanically stacked tandem solar cells yielded the PCE of 31.27% and 31.47%, respectively. This work highlights that interface passivation, supported by sensitivity and thermal stability analyses, is an effective strategy for minimising recombination losses. These improvements will contribute to the advancement of high-efficiency triple-cation perovskite and tandem photovoltaic technologies.

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Journal
Next Chemical Engineering
Published
2026-10-03
DOI
https://doi.org/10.1016/j.nxcen.2026.100123
Primary Topic
Perovskite Materials and Applications
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article
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article

Voltage loss mitigation in triple-cation perovskite solar cells through 2D-BA2PbI4 interface passivation: A numerical investigation towards tandem architectures

Sumaiya Parveen, Vidya Nand Singh, Vivek Chand, Udai Bhan Singh et al.
Next Chemical Engineering
Perovskite Materials and Applications
article

Voltage loss mitigation in triple-cation perovskite solar cells through 2D-BA2PbI4 interface passivation: A numerical investigation towards tandem architectures

Sumaiya Parveen, Vidya Nand Singh, Vivek Chand, Udai Bhan Singh, Madan Singh Chauhan, Vineet Kumar Singh, Prem Prakash Singh, Shiv Poojan Patel, Manish Kumar Singh, Ravi S. Singh
article en

Abstract

Interfacial defect-mediated recombination is a key limitation to achieving high open-circuit voltage (V OC ) in three-dimensional triple-cation perovskite (3D-TCP) solar cells. Herein, a comprehensive device passivation strategy is employed on Cs 0.03 FA 0.945 MA 0.025 Pb(I 0.975 Br 0.025 ) 3 using the physics-based SCAPS-1D simulator to investigate the influence of device optimisation, interface passivation, and tandem integration. We first examined a control device using absorber-thickness engineering, followed by a systematic sensitivity analysis that included bulk defect density, series and shunt resistances, together with temperature-dependent stability analysis. The optimised control device achieved a V OC of 1078.7 mV, with a significant total voltage loss of 491.3 mV. This confirmed that interfacial recombination is the main performance-limiting factor. To address this issue, we subsequently introduced a two-dimensional BA 2 PbI 4 Ruddlesden-Popper perovskite layer at the 3D-TCP/HTL interface. This addition helped to passivate interfacial defects and suppress nonradiative recombination, leading to a remarkable increase in V OC to 1134.0 mV. Additionally, the total voltage loss decreases significantly to 436.0 mV. Further, these optimised standalone control and passivated devices have been employed to simulate two-terminal (2T) monolithic and four-terminal (4T) mechanically stacked tandem configurations. The best simulated 2T monolithic and 4T mechanically stacked tandem solar cells yielded the PCE of 31.27% and 31.47%, respectively. This work highlights that interface passivation, supported by sensitivity and thermal stability analyses, is an effective strategy for minimising recombination losses. These improvements will contribute to the advancement of high-efficiency triple-cation perovskite and tandem photovoltaic technologies.

Next Chemical EngineeringVol. 3
University of Delhi (IN), Deen Dayal Upadhyaya Gorakhpur University (IN)
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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