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March 6, 2026ACS Materials Au2 citationsOpen Access

Strongly Confined Bismuth Antimonide Quantum Dots

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MKMin KhadkaRSR. SubediQZQiaohui Zhou

Key Points

  • The research aims to synthesize and characterize bismuth antimonide quantum dots for their electronic properties.
  • Spherical Bi1–xSbx quantum dots synthesized using pulsed laser ablation in liquids.
  • Characterization of energy bandgap and chemical composition.
  • Analysis of stability through zeta potential measurement.
  • Investigation of paramagnetic states using electron spin resonance.
  • Quantum dots had a diameter of approximately 8 ± 2 nm.
  • Energy bandgap measured at 2.02 ± 0.27 eV, significantly higher than the bulk value.
  • Chemical composition consists of about 77 ± 2 at. % Bi and 23 ± 2 at. % Sb.
  • Colloid stability indicated by a zeta potential of −38 ± 18 mV.
  • Detection of electron spin resonance signals at room and cryogenic temperatures.

Abstract

Bismuth antimonide (Bi1–xSbx) has emerged as a highly promising material for quantum applications due to its complex band structure. In this study, spherical Bi1–xSbx quantum dots (QDs), with a diameter of around 8 ± 2 nm, were successfully synthesized by pulsed laser ablation in liquids. The energy bandgap was determined at 2.02 ± 0.27 eV, which is significantly higher than the bulk value (∼0.025 eV). The strong confinement nature of the dots was confirmed by the Raman peak shifts. The chemical composition of the Bi1–xSbx QDs was measured to be around 77 ± 2 at. % of Bi and 23 ± 2 at. % of Sb. The colloid containing the Bi1–xSbx QDs was classified as highly stable, displaying a zeta potential of −38 ± 18 mV. Finally, the Bi1–xSbx QDs exhibited an electron spin resonance (ESR) signal at room temperature and at cryogenic temperature (4.2 K); consequently, revealing the presence of paramagnetic states.

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Cite This Study

Khadka et al. (2026) studied this question.

synapsesocial.com/papers/69aa70f8531e4c4a9ff5b3c5https://doi.org/10.1021/acsmaterialsau.5c00233
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