Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group
  • Applied Spectroscopy
  • Vol. 60,
  • Issue 3,
  • pp. 322-329
  • (2006)

Spectrometric Determination of the Refractive Index of Optical Wave Guiding Materials Used in Lab-On-a-Chip Applications

Not Accessible

Your library or personal account may give you access

Abstract

The design and optimization of light-based analytical devices often require optical characterization of materials involved in their construction. With the aim of benefiting lab-on-a-chip applications, a transmission spectrometric method for determining refractive indices, <i>n</i>, of transparent solids is presented here. Angular dependence of the reflection coefficient between material–air interfaces constitutes the basis of the procedure. Firstly, the method is studied via simulation, using a theoretical algorithm that describes the light propagation through the sample slide, to assess the potentially attainable accuracy. Simulations also serve to specify the angles at which measurements should be taken. Secondly, a visible light source and an optical fiber spectrometer are used to perform measurements on three commonly used materials in optical lab-on-a-chip devices. A nonlinear regression subroutine fits experimental data to the proposed theoretical model and is used to obtain <i>n</i>. Because the attainable precision using this method of refractive index determination is dictated by the uncertainty in the transmission measurements, the precision (with 95% confidence) for mechanically rigid samples, namely glass and poly(methyl methacrylate) (PMMA), is higher than those estimated for the elastomer sample (in-house-molded poly(dimethylsiloxane) (PDMS)). At wavelengths with the highest signal-to-noise ratio for the spectrometer setup, the estimated refractive indices were 1.43 ± 0.05 (580 nm) for PDMS, 1.54 ± 0.02 (546 nm) for glass, and 1.485 ± 0.005 (656 nm) for PMMA. Accurate refractive index estimations with an average precision equal to 0.01 refractive index units (RIU) were obtained for PMMA and glass samples, and an average precision of 0.09 RIU for the PDMS molded slide between 550 and 750 nm was obtained.

PDF Article
More Like This
Fabrication of large all-PDMS micropatterned waveguides for lab on chip integration using a rapid prototyping technique

Daniel Pérez-Calixto, Diego Zamarrón-Hernández, Aarón Cruz-Ramírez, Mathieu Hautefeuille, Juan Hérnandez-Cordero, Victor Velázquez, and Marcela Grether
Opt. Mater. Express 7(4) 1343-1350 (2017)

Freestanding optical fibers fabricated in a glass chip using femtosecond laser micromachining for lab-on-a-chip application

Ya Cheng, Koji Sugioka, and Katsumi Midorikawa
Opt. Express 13(18) 7225-7232 (2005)

Bragg grating based biochemical sensor using submicron Si/SiO2 waveguides for lab-on-a-chip applications: a novel design

Saurabh Mani Tripathi, Arun Kumar, Emmanuel Marin, and Jean-Pierre Meunier
Appl. Opt. 48(23) 4562-4567 (2009)

Cited By

You do not have subscription access to this journal. Cited by links are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.