Orchestrated oxygen-vacancy/plasmon synergy in a self-regenerating SERS metasurface for molecular fingerprinting
(2026) In Applied Surface Science 746.- Abstract
Orchestrating oxygen-vacancy/plasmon synergy within a monolithic Ag@SrTiO3 heterostructure yields a self-regenerating SERS metasurface for high-fidelity molecular fingerprinting. Through an in situ reduction strategy, Ag nanoparticles are intimately and conformally anchored across the entire SrTiO3 nanocube surface, achieving maximal surface utilization and seamless electronic coupling at the heterointerface. This architecture generates densely distributed electromagnetic hotspots within densely packed interparticle regions, while concurrently engineered oxygen vacancies establish low-barrier charge-transfer pathways that facilitate resonant photoinduced electron transfer between substrate and analyte molecules.... (More)
Orchestrating oxygen-vacancy/plasmon synergy within a monolithic Ag@SrTiO3 heterostructure yields a self-regenerating SERS metasurface for high-fidelity molecular fingerprinting. Through an in situ reduction strategy, Ag nanoparticles are intimately and conformally anchored across the entire SrTiO3 nanocube surface, achieving maximal surface utilization and seamless electronic coupling at the heterointerface. This architecture generates densely distributed electromagnetic hotspots within densely packed interparticle regions, while concurrently engineered oxygen vacancies establish low-barrier charge-transfer pathways that facilitate resonant photoinduced electron transfer between substrate and analyte molecules. The synergistic interplay between maximized plasmonic coverage and vacancy-mediated interfacial charge transport delivers an enhancement factor of 2.46 × 108 with detection limits down to 10−10 M for Rhodamine 6G. Beyond sensitivity, intrinsic photocatalytic activity imparts self-regenerating capability, enabling complete degradation of residual analytes under UV irradiation within 30 min and sustaining reproducible performance over multiple detection cycles. Reliable quantification in river water matrices confirms practical viability for trace contaminant analysis. This work establishes oxygen-vacancy-mediated interfacial engineering-coupled with conformal plasmonic integration-as a transformative strategy for transforming a widely available perovskite into a high-performance, reusable SERS platform, advancing the design of intelligent sensing materials through synergistic heterointerface optimization.
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- author
- Che, Yandong ; Ding, Jiacheng ; Wang, Xu ; Yang, Bing ; Kong, Lingru ; Pullerits, Tõnu LU ; Song, Peng and Yang, Yanqiu
- organization
- publishing date
- 2026-11
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- Orchestrated synergy, Oxygen vacancies, Self-regenerating SERS metasurface, Trace contaminant detection
- in
- Applied Surface Science
- volume
- 746
- article number
- 167572
- publisher
- Elsevier
- external identifiers
-
- scopus:105042253307
- ISSN
- 0169-4332
- DOI
- 10.1016/j.apsusc.2026.167572
- language
- English
- LU publication?
- yes
- id
- f9b46a46-c336-4790-8ba0-237d1ab28afa
- date added to LUP
- 2026-09-02 12:34:16
- date last changed
- 2026-09-02 12:34:47
@article{f9b46a46-c336-4790-8ba0-237d1ab28afa,
abstract = {{<p>Orchestrating oxygen-vacancy/plasmon synergy within a monolithic Ag@SrTiO<sub>3</sub> heterostructure yields a self-regenerating SERS metasurface for high-fidelity molecular fingerprinting. Through an in situ reduction strategy, Ag nanoparticles are intimately and conformally anchored across the entire SrTiO<sub>3</sub> nanocube surface, achieving maximal surface utilization and seamless electronic coupling at the heterointerface. This architecture generates densely distributed electromagnetic hotspots within densely packed interparticle regions, while concurrently engineered oxygen vacancies establish low-barrier charge-transfer pathways that facilitate resonant photoinduced electron transfer between substrate and analyte molecules. The synergistic interplay between maximized plasmonic coverage and vacancy-mediated interfacial charge transport delivers an enhancement factor of 2.46 × 10<sup>8</sup> with detection limits down to 10<sup>−10</sup> M for Rhodamine 6G. Beyond sensitivity, intrinsic photocatalytic activity imparts self-regenerating capability, enabling complete degradation of residual analytes under UV irradiation within 30 min and sustaining reproducible performance over multiple detection cycles. Reliable quantification in river water matrices confirms practical viability for trace contaminant analysis. This work establishes oxygen-vacancy-mediated interfacial engineering-coupled with conformal plasmonic integration-as a transformative strategy for transforming a widely available perovskite into a high-performance, reusable SERS platform, advancing the design of intelligent sensing materials through synergistic heterointerface optimization.</p>}},
author = {{Che, Yandong and Ding, Jiacheng and Wang, Xu and Yang, Bing and Kong, Lingru and Pullerits, Tõnu and Song, Peng and Yang, Yanqiu}},
issn = {{0169-4332}},
keywords = {{Orchestrated synergy; Oxygen vacancies; Self-regenerating SERS metasurface; Trace contaminant detection}},
language = {{eng}},
publisher = {{Elsevier}},
series = {{Applied Surface Science}},
title = {{Orchestrated oxygen-vacancy/plasmon synergy in a self-regenerating SERS metasurface for molecular fingerprinting}},
url = {{http://dx.doi.org/10.1016/j.apsusc.2026.167572}},
doi = {{10.1016/j.apsusc.2026.167572}},
volume = {{746}},
year = {{2026}},
}