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February 20, 2026Nature Communications2 citationsOpen Access

Anapole-state-enhanced 2D chiral photodetector operating in the near-infrared second window

QZQi-hang ZhangZDZihao DongKLKai Liu

Key Points

  • This research aims to enhance the efficiency of 2D photodetectors using anapole states.
  • Developed a plasmonic metasurface to enhance photodetection.
  • Utilized high-order multipoles and anapole states for improved performance.
  • Tested the MoS2/WSe2 heterostructure under near-infrared conditions.
  • Achieved a responsivity of 1.35 A/W at 1550 nm, significantly higher than traditional structures.
  • Demonstrated discrimination ratios of up to 7.2 due to broken mirror symmetry.
  • Indicated effective operation at room temperature in the NIR-Ⅱ window.

Abstract

Abstract Two-dimensional (2D) materials hold promise for miniaturized photodetectors. With ample exciton resonances, the photodetection range of transition metal dichalcogenides (TMDCs) can be further extended to long wavelengths on a large scale by two-photon absorption (TPA), breaking the limit of their bandgaps. However, the conversion efficiency of TPA usually remains low despite resonant nonlinear optical effects. Here, we present a plasmonic metasurface-enhanced 2D TMDC photodetector by means of high-order multipoles with anapole states, as well as quasi-bound states in the continuum, operating efficiently in the near-infrared second (NIR-Ⅱ) window at room temperature. The optical response of the MoS 2 /WSe 2 heterostructure is simultaneously enhanced by the interlayer exciton resonances and by the hot carrier injection from the plasmonic metasurface. By optimizing the metasurface design, the responsivity can reach 1.35 A/W at 1550 nm, which is ~5 × 10 4 times larger than that of a MoS 2 /WSe 2 heterostructure on SiO 2 /Si substrate. Furthermore, the broken mirror symmetry of the structure enables a chiral photoelectric response with discrimination ratios up to 7.2. Our study offers a promising platform for applications in NIR-Ⅱ bio-imaging, telecommunication, and on-chip spectroscopic sensing.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/6997f9ddad1d9b11b34529dbhttps://doi.org/10.1038/s41467-026-69727-z
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