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May 3, 20260 citations

Improved thermal stability of Au-capped antireflective substrates with organic adhesion layers for real-time nanomaterial imaging.

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YHYoshiaki HattoriYCYih‐Ren ChangMKM. Kitamura

Key Points

  • This research investigates how an organic adhesion layer affects the thermal stability of antireflective substrates with gold films.
  • Examined thermal stability of Au films on MPTMS-modified SiO2 substrates compared to Cr adhesion layers.
  • Used optical microscopy to monitor structural changes and enhancements in substrate performance post-annealing.
  • Analyzed reflectance spectra and grain morphology before and after thermal treatments.
  • Au films on MPTMS-modified substrates exhibited enhanced thermal stability with continuous surfaces post-annealing.
  • Above 300°C, polygonal nanoholes formed in Au films, indicative of high crystallinity with specific internal angles.
  • Reflectance spectrum remained stable after annealing at 250°C, confirming effective thermal performance.

Abstract

Antireflective (AR) multilayer substrates have emerged as advanced platforms for surface-sensitive optical imaging. This study examines the thermal stability of AR substrates incorporating an ultrathin Au top layer, with a focus on the influence of the organic adhesion layer 3-mercaptopropyltrimethoxysilane (MPTMS). Au films (18 nm) deposited on MPTMS-modified SiO 2 demonstrated considerably improved morphological and thermal robustness compared with films formed using conventional Cr adhesion layers or without any adhesion layer. Prior to annealing, the Au films on MPTMS-based AR substrates consisted of compact assemblies of fine grains (~20 nm). After annealing, the films recrystallized with an enhanced (111) orientation within the face-centered cubic structure, yielding continuous, groove-free surfaces. The reflectance spectrum of the AR substrates remained largely unchanged even after annealing at 250°C. However, annealing above 300°C led to the formation of ~300 nm polygonal nanoholes in the Au films. The internal angles of these nanoholes were often close to 120° and 240°, reflecting the high crystallinity and threefold symmetry of the Au(111) plane. As a proof of concept, realtime optical microscopy was used to monitor the thermal reduction of ultrathin patterned AuO x layers, highlighting the promise of MPTMS-based AR substrates for real-time imaging of thermally reactive nanomaterials in surface analysis, chemical sensing, and thin-film diagnostics.

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Cite This Study

Hattori et al. (2026) studied this question.

synapsesocial.com/papers/69f6e60f8071d4f1bdfc69e9https://doi.org/10.1088/1361-6528/ae670a
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