Mass‐Manufactured Gradient Plasmonic Metasurfaces for Enhanced Mid‐IR Spectrochemical Analysis of Complex Biofluids

S Samir Rosas (Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA) S Shovasis Kumar Biswas (Department of Electrical and Computer Engineering University of Wisconsin‐Madison Madison WI 53706 USA) W Wihan Adi (Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA) F Furkan Kuruoglu (Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA) A Aidana Beisenova (Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA) M Manish S. Patankar (Department of Obstetrics and Gynecology University of Wisconsin–Madison Madison WI 53792 USA) F Filiz Yesilkoy (Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA)

Abstract

Abstract Mid‐infrared (Mid‐IR) spectroscopy offers powerful label‐free molecular analysis capabilities but faces significant challenges when analyzing complex biological samples. Here, a transformative surface‐enhanced infrared absorption spectroscopy (SEIRAS) platform is presented that overcomes fundamental limitations through key innovations. First, high‐throughput wafer‐scale fabrication of mid‐IR plasmonic micro‐hole‐array (MHA) metasurfaces is demonstrated on free‐standing silicon nitride (Si 3 N 4 ) membranes, yielding ≈400 sensor chips per 6‐inch wafer. Second, the gradient MHA metasurface design supports spectrally cascaded plasmonic modes, generating over 400 sharp resonance peaks across the 1200–2000 cm −1 fingerprint region. This approach enables comprehensive molecular fingerprinting using simple imaging optics in transmission mode. Third, the SEIRAS platform is validated using a model polymer system and clinical peritoneal fluid samples from ovarian cancer patients, demonstrating its capability to resolve complex molecular signatures in real biological specimens. The platform's dense spectral coverage ensures optimal on‐resonance enhancement across the broad fingerprint region, revealing previously obscured vibrational bands that conventional IR spectroscopy cannot distinguish. By combining high‐throughput fabrication with simplified optical readout and the capability to analyze complex biological samples, this work establishes a foundation for translating SEIRAS technology into practical biomedical applications, promising a real‐world impact.

Article Details

Volume / Issue Vol. 37, Issue 47
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (7)

S

Samir Rosas

Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA

S

Shovasis Kumar Biswas

Department of Electrical and Computer Engineering University of Wisconsin‐Madison Madison WI 53706 USA

W

Wihan Adi

Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA

F

Furkan Kuruoglu

Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA

A

Aidana Beisenova

Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA

M

Manish S. Patankar

Department of Obstetrics and Gynecology University of Wisconsin–Madison Madison WI 53792 USA

F

Filiz Yesilkoy

Department of Biomedical Engineering University of Wisconsin–Madison Madison WI 53706 USA