SU-8-meta-phenylenediamine-conjugated thin film for temperature sensing

Author:

Barhum Hani12ORCID,Attrash Mohammad12ORCID,Brice Inga3,Salgals Toms4,Matar Madhat2,Amer Mariam12,Abdeen Ziad56,Alnis Jānis3,Bobrovs Vjačeslavs4,Abdeen Abdul Muhsen57,Ginzburg Pavel1ORCID

Affiliation:

1. Department of Electrical Engineering, Tel Aviv University, Ramat Aviv , Tel Aviv 69978, Israel

2. Triangle Regional Research and Development Center , Kfar Qare 3007500, Israel

3. Institute of Atomic Physics and Spectroscopy, University of Latvia, Jelgavas Street 3 , Riga 1004, Latvia

4. Institute of Telecommunications, Riga Technical University, 12 Azenes Street , Riga 1048, Latvia

5. Al-Quds Public Health Society , Jerusalem, Palestine

6. Al-Quds Nutrition and Health Research Institute, Al-Quds University , East Jerusalem, Palestine

7. Marshall University John Marshall Dr , Huntington, WV 25755, USA

Abstract

Polymers have distinctive optical properties and facile fabrication methods that have been well-established. Therefore, they have immense potential for nanophotonic devices. Here, we demonstrate the temperature-sensing potential of SU8-meta-phenylenediamine (SU8-mPD), produced by epoxy amination of the SU-8 polymer. Its properties were examined through a series of molecular structural techniques and optical methods. Thin layers have demonstrated optical emission and absorption in the visible range around 420 and 520 nm, respectively, alongside a strong thermal responsivity, characterized by the 18 ppm °C −1 expansion coefficient. A photonic chip, comprising a thin 5–10 μm SU8-mPD layer, encased between parallel silver and/or gold thin film mirrors, has been fabricated. When pumped by an external light source, this assembly generates a pronounced fluorescent signal that is superimposed with the Fabry–Pérot (FP) resonant response. The chip undergoes mechanical deformation in response to temperature changes, thereby shifting the FP resonance and encoding temperature information into the fluorescence output spectrum. The time response of the device was estimated to be below 1 s for heating and a few seconds for cooling, opening a new avenue for optical sensing using SU8-based polymers. Thermoresponsive resonant structures, encompassing strong tunable fluorescent properties, can further enrich the functionalities of nanophotonic polymer-based platforms. This article is part of the theme issue ‘Celebrating the 15th anniversary of the Royal Society Newton International Fellowship’.

Funder

the Latvian Council of Science

QuanTAU—Center for Quantum Science and Technology equipment grant

ERC StG 'InMotion'

the Ministry of Science, Technology and Space of Israel

Publisher

The Royal Society

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