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Sensitivity-enhanced Ag-Perovskite-HfSe2 multilayer SPR sensor for high-performance refractive index sensing applications

delete2026-04-01
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PRE
AI
U
U. Arun Kumar *
A
Azath Mubarakali
N
N. Vithyalakshmi
E
Elshafie, Hashim
P
P. Parthasarathy
DOI:10.1142/S0217984926501071delete
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Abstract

Abstract

En 中文
Surface plasmon resonance (SPR) sensors are extensively employed for label-free, real-time monitoring of subtle refractive index variations at metal-dielectric interfaces, making them highly effective platforms for chemical and biochemical sensing. In this study, a numerically validated multilayer SPR refractive index sensor is proposed, composed of a silver (Ag) plasmonic layer integrated with methylammonium lead halide perovskite (MAPbX(3)) and the low-dimensional material hafnium diselenide (HfSe2) on a BK7 prism substrate. The hybrid heterostructure combines the excellent plasmonic characteristics of Ag, the variable optical absorption of MAPbX(3), as well as the very high carrier mobility, and anisotropic optical characteristics of HfSe2 to create greater confinement of the electromagnetic fields at the sensor interface. Electromagnetic modeling using the transfer matrix method and finite element simulations in COMSOL Multiphysics enabled optimization of layer thicknesses and evaluation of angular sensitivity, figure of merit (FOM), and detection limit. The optimal configuration is Ag: 56nm; MAPbX(3): 2.0nm; HfSe2: 3.0nm. This configuration provides an extremely high angular sensitivity of 320(degrees)/RIU at a wavelength of 633nm. A strong linear relationship exists between resonance angle and refractive index variation within the range of 1.334-1.355 RIU (R2 = 0.988). Machine learning models were employed to optimize computational efficiency and enable rapid prediction of sensor response, while maintaining a high level of accuracy (achieving an R2>0.99). Electric field analysis confirms a maximum field strength of approximately 2.5 & times;105V/m when the angle of resonance is 76.6(degrees) as evidence of the strong plasmonic coupling in the multi-layer structure. Overall, the proposed design based on a perovskite-HfSe2 heterostructure represents an adaptable, physics-based, high-sensitivity refractive index sensing platform for future chemically or biologically functionalized sensing applications.
Keywords:
Surface plasmon resonance
refractive index sensing
perovskite materials
hafnium diselenide
multilayer architecture

Journal

Modern Physics Letters B cover
Modern Physics Letters B
IF:
2.2
Papers:
207
Citations:
6.6K

Organization

K
karpagam academy of higher education (kahe)
Scholars:
1.2K
Papers: 1.2K
Citations: 0
K
king ‎khalid university
Scholars:
680
Papers: 394
Citations: 0
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