Jiang, TaoTaoJiangBhattacharya, AnganaAnganaBhattacharyaBarkey, MartinMartinBarkeyAigner, AndreasAndreasAignerRohrer, LinaLinaRohrerWeber, ThomasThomasWeberWang, JuanJuanWangMaier, Stefan A.Stefan A.MaierTittl, AndreasAndreasTittl2026-03-122026-03-122025-08-28Advanced Functional Materials 36 (9): e16021 (2025)https://hdl.handle.net/11420/62017Nanophotonic platforms based on surface-enhanced infrared absorbance spectroscopy (SEIRAS) have emerged as an effective tool for molecular detection. Sensitive nanophotonic sensors with robust resonant modes and amplified electromagnetic near fields are essential for spectroscopy, especially in lossy environments. Metasurfaces driven by bound state in the continuum (BICs) have unlocked a powerful platform for molecular detection due to their exceptional spectral selectivity. While plasmonic BIC metasurfaces are preferred for molecular spectroscopy due to their high surface fields, enhancing the interaction with analytes, dielectric BICs have become popular due to their high-quality factors and, thus, high sensitivity. However, their sensing performance has largely been demonstrated in air, neglecting the intrinsic infrared (IR) losses found in common solvents. This study evaluates the suitability of plasmonic versus dielectric platforms for in situ molecular spectroscopy. Here, the sensing performance of plasmonic (gold) and dielectric (silicon) metasurfaces is assessed across liquid environments with varying losses resembling typical solvents. The results show that dielectric metasurfaces excel in dry conditions, while plasmonic BIC metasurfaces outperform them in lossy solvents, with a distinct crossover point where both show similar performance. The results provide a framework for selecting the optimal metasurface material platform for SEIRAS studies based on environmental conditions.en1616-3028Advanced functional materials20259bound states in the continuumIR sensinglossy environmentplasmonic and dielectric metasurfacesSEIRASTechnology::600: TechnologyA comparative analysis of plasmonic and dielectric metasurface sensing platforms powered by bound states in the continuumJournal Article10.1002/adfm.202516021Journal Article