PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
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

View Full Paper
JCJaejun CHANGMHMoon Gyu HanJMJi Hyun Min

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.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

CHANG et al. (2026) studied this question.

synapsesocial.com/papers/698d6d9f5be6419ac0d529e1https://doi.org/10.1063/5.0302699
Ask AI
Helpful
Bookmark
Share
View Full Paper