Scalable Optical Nose Realized with a Chemiresistively Modulated Light‐Emitter Array

Author:

Kwon Hyunah12ORCID,Kamboj Ocima3,Song Alexander12,Alarcón‐Correa Mariana12,Remke Julia3,Moafian Fahimeh3,Miksch Björn4,Goyal Rahul12,Kim Dong Yeong56,Hamprecht Fred A.3,Fischer Peer1278ORCID

Affiliation:

1. Institute for Molecular Systems Engineering and Advanced Materials Heidelberg University INF 225 69120 Heidelberg Germany

2. Max Planck Institute for Medical Research Jahnstrasse 29 69120 Heidelberg Germany

3. IWR Heidelberg University INF 205 69120 Heidelberg Germany

4. Max Planck Institute for Intelligent Systems Heisenbergstrasse 3 70569 Stuttgart Germany

5. Max Planck Institute for Solid State Research Heisenbergstrasse 1 70569 Stuttgart Germany

6. Major of Semiconductor Engineering Pukyong National University 45 Yongso‐ro, Nam‐gu Busan 48513 Republic of Korea

7. Center for Nanomedicine Institute for Basic Science (IBS) Seoul 03722 Republic of Korea

8. Department of Nano Biomedical Engineering (NanoBME) Advanced Science Institute Yonsei University Seoul 03722 Republic of Korea

Abstract

AbstractBiological olfaction relies on a large number of receptors that function as sensors to detect gaseous molecules. It is challenging to realize artificial olfactory systems that contain similarly large numbers of sensory materials. It is shown that combinatorial materials processing with vapor deposition can be used to fabricate large arrays of distinct chemiresistive sensing materials. By combining these with light‐emitting diodes, an array of chemiresistively‐modulated light‐emitting diodes, or ChemLEDs, that permit a simultaneous optical read‐out in response to an analyte is obtained. The optical nose uses a common voltage source and ground for all sensing elements and thus eliminates the need for complex wiring of individual sensors. This optical nose contains one hundred ChemLEDs and generates unique light patterns in response to gases and their mixtures. Optical pattern recognition methods enable the quantitative prediction of the corresponding concentrations and compositions, thereby paving the way for massively parallel artificial olfactory systems. ChemLEDs open the possibility to explore demanding gas sensing applications, including in environmental, food quality monitoring, and potentially diagnostic settings.

Funder

Klaus Tschira Stiftung

Bundesministerium für Bildung und Forschung

Publisher

Wiley

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