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February 12, 2026Applied Physics Letters0 citationsOpen Access

Ligand-stripping approach to modulate carrier transport in a bilayer structure achieving charge balance for efficient and stable quantum dot light-emitting diodes

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JCJaejun CHANGSeoul National UniversityMHMoon Gyu HanJMJi Hyun MinSamsung (South Korea)

Key Points

  • The aim is to enhance charge balance in quantum dot light-emitting diodes (QD-LEDs) to improve efficiency and stability.
  • Utilized controlled ligand stripping methods: colloidal-state stripping (CSS) and film-state stripping (FSS).
  • Measured hole and electron currents to assess the effects of ligand stripping.
  • Designed a bilayer emissive configuration combining FSS and CSS quantum dots.
  • CSS reduced hole and electron currents by approximately 56% and 55%, respectively.
  • FSS increased hole and electron currents by factors of 2.8 and 7.6.
  • Achieved a maximum current efficiency of 16.1 cd A−1 and improved stability with an LT50 of 85.4 h.

Abstract

Charge balance is a decisive factor for the efficiency and operational stability of blue quantum dot light-emitting diodes (QD-LEDs). In these devices, electron transport is typically excessive relative to hole transport, causing recombination imbalance. Such disparity leads to exciton quenching and accelerates device degradation, limiting performance. Here, we demonstrate a strategy to improve charge balance through controlled ligand stripping in the emissive layer, enabling bidirectional tuning of hole and electron transport. Colloidal-state stripping (CSS) partially removed ligands, introducing trap states that reduced both hole and electron currents, whereas film-state stripping (FSS) extensively removed ligands, facilitating tunneling and markedly enhancing transport. Single-carrier measurements confirmed that CSS decreased hole and electron currents by ∼56% and ∼55%, respectively, while FSS increased them by factors of 2.8 and 7.6. Building on these complementary behaviors, we designed a bilayer emissive configuration combining FSS quantum dots adjacent to the hole-transport layer and CSS quantum dots adjacent to the electron-transport layer, thereby independently regulating hole and electron transport to improve charge balance. As a result, the bilayer QD-LED achieved a maximum current efficiency of 16.1 cd A−1 and an LT50 of 85.4 h at 650 cd m−2, representing a 4.4-fold improvement in stability compared to the control device. These findings establish ligand stripping as a practical strategy for engineering carrier-transport-modulated bilayer structures that deliver charge balance, high efficiency, and long operational lifetime.

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Cite This Study

CHANG et al. (2026) studied this question.

synapsesocial.com/papers/698d6d9f5be6419ac0d529e1https://doi.org/10.1063/5.0302699
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