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May 8, 2026Applied Physics Letters1 citations

Black phosphorene/graphene heterostructures as high-performance SERS platforms for ultrasensitive label-free DNA nucleotides detection

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FNFerdinand NouayeUniversité Mohammed VI PolytechniqueJGJorge Navarro GiraldoCentral European Institute of TechnologyMRMohammed Amine RhanbouriUniversité Mohammed VI Polytechnique

Key Points

  • This research aims to develop and evaluate black phosphorene-based heterostructures as SERS platforms for detecting DNA nucleotides.
  • Demonstrated black phosphorene/graphene (BP/Gr) and BP/molybdenum disulfide (BP/MoS2) heterostructures as SERS substrates.
  • Conducted Hall-effect measurements to assess molecular adsorption and charge transfer characteristics.
  • Utilized in situ Raman spectroscopy under applied electrical bias to study nucleotide adsorption effects.
  • BP/Gr heterostructures show the highest sensitivity in detecting DNA nucleotides compared to individual constituents.
  • Quantitative correlation determined between charge transfer and SERS response with adenine and thymine affecting n-type and p-type doping respectively.
  • In situ measurements indicate that nucleotide adsorption is tunable by applying electrical bias, enhancing interaction control.

Abstract

Surface-enhanced Raman scattering (SERS) based on two-dimensional materials offers a route toward ultrasensitive and non-destructive biomolecular detection; however, achieving strong and tunable enhancement remains challenging. Here, we report the first demonstration of black phosphorene (BP)-based van der Waals heterostructures, namely, BP/graphene (BP/Gr) and BP/molybdenum disulfide (BP/MoS2), as highly efficient SERS substrates for DNA nucleotide detection. Both heterostructures exhibit markedly enhanced Raman signals compared to their individual two-dimensional constituents, with BP/Gr showing the highest sensitivity. The enhancement arises from synergistic interfacial charge transfer, amplified by BP's in-plane anisotropy, which promotes molecular adsorption and dipole interactions. Hall-effect measurements with controlled molecular adsorption on graphene reveal, for the first time, a quantitative correlation between charge transfer and the SERS response, with adenine inducing n-type and thymine p-type doping. In situ Raman spectroscopy under applied electrical bias shows potential-dependent nucleotide adsorption, enabling tunable molecule-surface interactions. These findings establish BP-based heterostructures as ultrasensitive label-free biosensing platforms and clarify the role of charge-transfer mechanisms in two-dimensional systems.

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Cite This Study

Nouaye et al. (2026) studied this question.

synapsesocial.com/papers/69fd7ec6bfa21ec5bbf0717ahttps://doi.org/10.1063/5.0320857
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