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March 28, 2026ACS Applied Nano Materials1 citations

V 2 O 5 /rGO Nanohybrid-Coated Fiber Optic Sensor for Subppb Detection of Nickel Ions

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SSSudhanshu SrivastavaSDSourav DuttaVSVVR Sai

Key Points

  • The aim is to develop a sensitive and selective sensor for detecting nickel ions in water using a nanohybrid coating.
  • Synthesis of V2O5−rGO nanohybrid using a sol−gel approach.
  • Characterization of the nanohybrid using XRD, HRSEM, and UV−vis spectroscopy.
  • Application of the nanohybrid on salinized U-bent fiber optic sensor probes for real-time monitoring.
  • Evaluation of sensor performance in terms of sensitivity and selectivity against competing metal ions.
  • The sensor shows a detection limit (LOD) down to 0.24 ppb and a limit of quantification (LOQ) of 0.812 ppb.
  • High sensitivity and rapid response time even in complex matrices like sewage treatment plant effluents.
  • Achieved a recovery rate of 96% to 104% when compared to standard ICP-MS analysis.

Abstract

Nickel ion (Ni2+) contamination in water poses significant environmental and health risks, necessitating the development of sensitive and selective detection methods. In this work, we present an optical fiber sensor coated with a vanadium pentoxide−reduced graphene oxide (V2O5−rGO) nanohybrid for the detection of Ni2+ ions in aqueous solutions in the range of 1−10k ppb. The nanohybrid was synthesized via a facile sol−gel approach, characterized using XRD, HRSEM, and UV−vis spectroscopy, and deposited ex situ over salinized U-bent fiber optic sensor (U-FOS) probes. The optical absorbance response of the sensor at a 450 nm wavelength was monitored to quantify the Ni2+ concentration in the aqueous samples. The developed sensor exhibited high sensitivity, rapid response time, and excellent selectivity toward Ni2+ ions, even in the presence of competing metal ions at 1:50 ppm. These sensors manifest a LOD and LOQ down to 0.24 and 0.812 ppb, respectively. Subsequently, a portable and sensitive 12-channel U-FOS probe array device employed for Ni2+ detection demonstrated a 0.1 ppb detection limit. The sensor was challenged with filtered sewage treatment plant effluents (neat and spiked with different Ni2+ concentrations in ppb), which yielded a recovery rate of 96% to 104% when benchmarked with the standard ICP-MS analysis. These results demonstrate the potential of V2O5−rGO U-FOS for real-world water quality monitoring. This study paves the way for further exploration of advanced materials for the detection of many other metal ions by exploiting the U-FOS platform.

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Cite This Study

Srivastava et al. (2026) studied this question.

synapsesocial.com/papers/69c770c08bbfbc51511e0b35https://doi.org/10.1021/acsanm.5c05628
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