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March 10, 2026Advanced Optical Materials0 citationsOpen Access

High‐Performance Photodetectors of Quasi‐2‐Dimensional Epitaxially‐Connected Quantum Dot Superlattices

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DSDadan SuhendarYAY. AokiCNChisa Nishiyama

Key Points

  • Investigate the performance of photodetectors made from quasi-2D epitaxially connected quantum dot superlattices.
  • Developed monolayer photosensors utilizing epitaxially-connected PbS quantum dot superlattices.
  • Conducted light intensity-dependent characterization to assess trap density.
  • Performed time-resolved measurements to analyze response time and carrier dynamics.
  • Conducted wavelength-dependent analysis to evaluate exciton generation.
  • Achieved higher responsivity and detectivity than conventional short-ligand-capped quantum dot assemblies.
  • Demonstrated low trap density indicating improved charge transport characteristics.
  • Measured faster response time and identified a two-step charge carrier dynamic.
  • Noted multiple exciton generation during high-energy photon excitation.

Abstract

ABSTRACT Colloidal semiconductor quantum dots (QDs) are among the promising materials for optoelectronic device applications, including photodetectors. Their size‐tunable bandgap enables wide‐range wavelength photodetection from the visible to the mid‐infrared regime. Most recently, the realization of epitaxially‐connected quantum dot superlattices (QDSLs) addresses one of the critical challenges associated with assemblies of QDs and their electronic transport. These epitaxially‐connected QDSLs demonstrated the possibility of delocalized charge transport, which could improve the electrical transport performance of QD‐based devices. On the other hand, delocalized charge carriers might affect the quantum confinement effect, potentially reducing the merits of QDs for optoelectronic device performance. Here, we demonstrate high‐performance photodetectors based on a monolayer of quasi‐2D epitaxially connected PbS QDSLs, exhibiting higher responsivity and detectivity than those of conventional short‐ligand‐capped QD assemblies. The remarkable photodetection enhancement can be indicated from several aspects: (i) the light intensity‐dependent characteristics reveal evidence of a low trap density within the epitaxially‐connected superlattice, (ii) the time‐resolved measurements show a faster response time and a two‐step charge carrier dynamic, (iii) the wavelength‐dependent analysis further suggests the occurrence of multiple exciton generation under high‐energy photon excitation. These findings establish the epitaxially‐connected QDSL as an optoelectronic metamaterial, an up‐and‐coming candidate for next‐generation, high‐performance photodetectors.

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Cite This Study

Suhendar et al. (2026) studied this question.

synapsesocial.com/papers/69af95de70916d39fea4df0chttps://doi.org/10.1002/adom.202503565
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