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Sub-nanometer scale investigation of polyelectrolyte adsorption and desorption processes using etched fiber Bragg
Vishwaraj Naik Parrikar1,2, Rakshith Boranna1,3, Suman Pahal4
1Department of Electronics and Communication Engineering, National Institute of Technology Goa, Cuncolim, Goa, India.
Communications Chemistry
|July 18, 2025
Summary
This study introduces an Etched Fiber Bragg Grating (EFBG) sensor for precise, in-situ thickness measurement of polyelectrolyte multilayer (PEM) films during fabrication. The technique reveals distinct adsorption and desorption behaviors of polyelectrolytes, crucial for nanotechnology applications.
Area of Science:
- Materials Science and Nanotechnology
- Optical Sensing
- Surface Chemistry
Background:
- Polyelectrolyte multilayer (PEM) thin films are fabricated using Layer-by-Layer (LbL) self-assembly for various nanotechnology applications.
- Accurate in-situ thickness monitoring is essential for controlling PEM film growth and properties.
- Existing methods may lack the precision or real-time feedback needed for nanoscale control.
Purpose of the Study:
- To present a novel optical measurement technique for in-situ analysis of PEM film buildup.
- To utilize Etched Fiber Bragg Gratings (EFBG) as sensors for quantifying deposited thickness.
- To investigate the adsorption and desorption dynamics of polyelectrolytes at varying pH conditions.
Main Methods:
- Fabrication of PEM films via LbL self-assembly using weak polyelectrolytes Poly(allylamine hydrochloride) (PAH) and Poly(acrylic acid) (PAA).
- Deposition of PEM films directly onto EFBG-based optical sensors.
- In-situ monitoring of thickness changes during alternative deposition steps and desorption phases.
Main Results:
- EFBG sensors successfully quantified the deposited thickness of PEM films during LbL assembly.
- Sub-nanometer scale observation of desorption revealed distinct behaviors: linear for PAA and exponential for PAH.
- The results validate inter-diffusive behavior of low molecular weight polyelectrolytes during both adsorption and desorption.
Conclusions:
- EFBG-based sensors provide a precise tool for real-time monitoring of PEM layer-by-layer buildup.
- The technique allows extraction of fundamental information on adsorption/desorption kinetics at the nanoscale.
- This enables fine-tuning of multilayer nano-scale architecture for advanced nanotechnology applications.

