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Session Overview
Session
TOM Applications S4: Applications of Optics and Photonics
Time:
Wednesday, 27/Aug/2025:
8:30am - 10:00am

Session Chair: Susana Silva, INESC TEC, Portugal
Location: Collegezaal A


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Presentations
8:30am - 9:00am
INVITED

Enhancing Optical Sensing with Nanocoatings for Advanced Chemical and Biological Detection

Luís Coelho

INESC TEC, Portugal

Optical sensing exploiting plasmonics and other types of surface waves provides exceptional performance for chemical and biological detection due to its high sensitivity and real-time capabilities. This study explores the integration of thin films with plasmonic, specifically leveraging metallic and dielectric nano structures, fabricated through sputtering and colloidal synthesis techniques. Advanced surface wave excitations such as localized surface plasmon resonances (SPR), Tamm Plasmon Polaritons (TPP), Bloch surface waves, and surface plasmon polaritons (SPP) are used to amplify sensor performance. Simulations and experimental data show that these nanostructured coatings significantly enhance electromagnetic field confinement, leading to improved detection limits and sensor robustness, showcasing promising applications in environmental monitoring, gas detection, and biomedical diagnostics.



9:00am - 9:15am

Optimization of optical sensing by gold nanostructures

Deshabrato Mukherjee1,2, Krisztián Kertész1, Zsolt Zolnai1, Zoltán Kovács1, András Deák1, András Pálinkás1, Zoltán Osváth1, Dániel Olasz1,3, Miklós Fried1,2, Sven Burger4, Thomas Siefke5,6, Jeetendra Gour5, Bernd Bodermann7, György Sáfrán1, Peter Petrik1,8

1HUN-REN Centre for Energy Research, Hungary; 2Óbuda University, Budapest, Hungary; 3Eötvös Loránd University, Budapest, Hungary; 4Zuse Institute Berlin (ZIB) \& JCMwave GmbH, Berlin, Germany; 5Friedrich Schiller University, Jena, Germany; 6Fraunhofer Institute for Applied Optics and Precision Engineering, Jena, Germany; 7Physikalisch-Technische Bundesanstalt, Braunschweig, Germany; 8University of Debrecen, Hungary

The range of applications using gold nanostructures for optical sensing increases rapidly, primarily utilizing the local surface plasmon resonance effect that increases the sensitivity. Among electrochemical and colloid chemical preparations, one of the most effective and widely used ways of preparing gold nanoparticles is sputtering or evaporation followed by thermal annealing. A broad range of recipes exists in the literature; however, the optimal parameters depend greatly on the initial thickness of the gold layer, the temperature profile, or the substrate material. We show that combinatorial preparation and in situ ellipsometry are powerful ways to optimize the amount of material and the temperature profile, respectively. We show that the sensitivity can be enhanced even more when ordered periodic gold nanostructures are used, one of the simplest forms of which is a gold grating. The limit of detection values for the ambient and overlayer were calculated using finite element optical simulations.



9:15am - 9:30am

Integrating proximal and remote sensing for precision viticulture

Francesca Rossi1, Lorenza Tuccio1, Giovanni Agati1, Giorgia Orlandi2, Salvatore Filippo Di Gennaro2, Alessandro Matese2, Andrea Berton3, Alessandra Zombardo4, Rita Perria4, Sergio Puccioni4, Marco Ammoniaci4, Paolo Storchi4, Lucia Cavigli1

1Cnr-Istituto di Fisica Applicata “Nello Carrara”, 50019 Sesto Fiorentino (FI), Italy; 2Cnr-Istituto per la BioEconomia, 50019 Sesto Fiorentino (FI), Italy; 3Cnr- Istituto di Geoscienze e Georisorse, 56127 Pisa (FI), Italy; 4CREA – Centro di Ricerca Viticoltura ed Enologia, 52100 Arezzo (AR), Italy

Achieving optimal wine quality depends on precise harvest timing, a traditionally laborious and subjective task. To address this challenge, this study proposes the integration of advanced sensing technologies. Proximal sensors, such as the Multiplex fluorescence sensor, and remote sensing via UAV-based imaging are combined to provide a comprehensive assessment of grape phenolic maturity. This integrated approach aims to deliver spatially explicit information, enabling accurate and efficient monitoring of grape quality and ultimately, optimizing wine production.



9:30am - 9:45am

Detection of magnetic particles using highly sensitive optically pumped magnetometer

Binyue Huang1,2,3,4, Miaohui Song1,2,3, Ying Liu1,2,3, Yueyang Zhai1,2,3

1School of Instrumentation and Optoelectronic Engineering, Beihang University, China; 2Hangzhou Innovation Institute, Beihang University, Hangzhou, China; 3Hefei National Laboratory, Hefei, China; 4Shen Yuan Honors College, Beihang University, Beijing, China

Aimed at enhancing the sensitivity, we develop an integrated optically pumped magnetometer (OPM) with the dual-beam scheme. Additionally, we explore the application of this sensor for magnetic particle detection and propose a method to estimate the rotation frequency of magnetic particles. Through experimental analysis, we establish a correlation between the rotation frequency and the flow rate, which enables the flow rate measurement.



9:45am - 10:00am

High-Sensitivity and High-Precision RI Sensing Using THz-Comb-Based Frequency Multiplication and Dual-Comb Active-Dummy Temperature Compensation

Masayuki Higaki1, Shuji Taue2, Yu Tokizane1, Eiji Hase1, Takeo Minamikawa1,3, Takeshi Yasui1

1Institute of Post-LED Photonics (pLED), Tokushima University, Japan; 2School of System Engineering, Kochi University of Technology, Japan; 3Graduate School of Engineering Science, Osaka University, Japan

This paper presents a novel optical-comb-based refractive index sensor that simultaneously achieves high-sensitivity and high-precision by combining THz-comb-based frequency multiplication with active-dummy temperature compensation in a dual-comb configuration. In this approach, a little RI-induced shift of the comb mode spacing (frep) is frequency-multiplied via THz frequency comb, while the dual-comb scheme compensates for temperature drift in frep. Experimental results demonstrate a 3100-fold improvement in RI sensitivity and a 10-fold enhancement in measurement precision.



 
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