Publication Type : Journal Article
Publisher : Optica Publishing Group
Source : Applied Optics
Url : https://doi.org/10.1364/ao.599798
Campus : Faridabad
School : School of Artificial Intelligence
Year : 2026
Abstract : 
 In this work, a compact optical waveguide grating sensor integrated
					with a gold (Au)–zinc oxide (ZnO)-coated plus-shaped cavity (PSC) is
					proposed for ultra-sensitive refractive index (RI) sensing of
					cerebrospinal fluid (CSF).
					The engineered PSC configuration significantly enhances light–matter
					interaction by enabling efficient phase-matched coupling of guided
					modes to surface plasmon polaritons (SPPs) at the
					Au–ZnO interface. The
					resulting strong electromagnetic field confinement is exploited
					for precise RI-based
					interrogation of CSF, whose RI varies from 1.33487 to 1.33924. For the
					tested RI range, the proposed sensor exhibits an auto-correlation
					coefficient (
	 R
 2
 ) of 1 and a sensitivity of 
	 3128.2(W.m
 −1
 )⋅RIU
 −1
 . This performance is achieved through
					rigorous optimization of key excitation parameters, including the
					input optical power, beam half-width, and operating wavelength.
					Furthermore, the influence of the PSC vertical slot width on device
					performance is investigated to ensure robust and optimized sensing
					characteristics. The obtained results demonstrate that the proposed
					PSC-based SPR sensor offers a compact, highly reliable, and
					high-resolution sensing platform, indicating potential for rapid and
					accurate RI-based diagnosis of CSF samples.

Cite this Research Publication : Shreya Wadkar, Sandesh Khandagale, Anita Kanwar, Niteshkumar Agrawal, Lokendra Singh, Compact optical waveguide grating RI sensor integrated with an Au–ZnO-coated plus-shaped cavity, Applied Optics, Optica Publishing Group, 2026, https://doi.org/10.1364/ao.599798