Design and Fabrication of Biosensor for a Specific Microbe by Silicon-Based Interference Color System

Author:

Sivakumar Muthusamy1ORCID,Ervanan Sangami2,Lakshmanan Susithra3,Venkatesan Sathya4,Kinoshita Takatoshi1,Lakshmi Duraikkannu Shanthana5,Kumar Alagarsamy Santhana Krishna6ORCID

Affiliation:

1. Department of Materials Science and Engineering, Nagoya Institute of Technology, Gokiso-cho, Showa-ku, Nagoya 4668555, Japan

2. St Catharine’s College, University of Cambridge, Trumpington St, Cambridge CB2 1RL, UK

3. Cambridge Centre for Advanced Research and Education in Singapore, 1 Create Way, CREATE, Singapore 138602, Singapore

4. Department of Chemistry, AMET Deemed to be University, Chennai 603112, India

5. RSK Environment Ltd., 18 Frogmore Road, Hempstead HP3 9RT, UK

6. Department of Chemistry, National Sun Yat-sen University, No. 70, Lienhai Road, Gushan District, Kaohsiung 80424, Taiwan

Abstract

In this paper, one of the great challenges faced by silicon-based biosensors is resolved using a biomaterial multilayer. Tiny biomolecules are deposited on silicon substrates, producing devices that have the ability to act as iridescent color sensors. The color is formed by a coating of uniform microstructures through the interference of light. The system exploits a flat, RNA-aptamer-coated silicon-based surface to which captured microbes are covalently attached. Silicon surfaces are encompassed with the layer-by-layer deposition of biomolecules, as characterized by atomic force microscopy and X-ray photoelectron spectroscopy. Furthermore, the results demonstrate an application of an RNA aptamer chip for sensing a specific bacterium. Interestingly, the detection limit for the microbe was observed to be 2 × 106 CFUmL−1 by visually observed color changes, which were confirmed further using UV-Vis reflectance spectrophotometry. In this report, a flexible method has been developed for the detection of the pathogen Sphingobium yanoikuyae, which is found in non-beverage alcohols. The optimized system is capable of detecting the specific target microbe. The simple concept of these iridescent color changes is mainly derived from the increase in thickness of the nano-ordered layers.

Publisher

MDPI AG

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