PofoliaShared via Pofolia

ACS Nano· 2026Q1

Interfacial Control of Hot-Carrier Extraction and Photostability in Two-Dimensional Materials

Claudia Gollner, Mohammad Taghinejad, Chenyi Xia, Zhepeng Zhang et al.

Short summary

Discontinuous 2D material contacts on rough metal surfaces generate larger photocurrents and enhance photostability by suppressing recombination-driven degradation, eliminating the need for encapsulation.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Interface morphology dictates energy band alignment at 2D material-metal junctions.
  • Discontinuous WS2 contacts on rough Au yield larger net transient photocurrents than uniform contacts.
  • Imbalanced electron and hole transfer from WS2 to Au explains the counterintuitive photocurrent observation.
  • Ultrafast charge extraction and separation prevent photo-induced degradation, enhancing photostability without encapsulation.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Two-dimensional transition metal dichalcogenides are promising materials for next-generation optoelectronic devices, yet their implementation is hindered by limited sample stability and challenges in forming reliable electrical contacts. Here we show that interface morphology critically governs the energy band alignment at TMDC-metal junctions, thereby determining their optoelectronic response and susceptibility to degradation. We probe the underlying charge carrier dynamics in monolayer WS2 on gold (Au) and fused silica (SiO2) using time-domain THz emission spectroscopy. For laser excitation above the band gap of WS2, we independently extract effective transport times for both electrons and holes and find that discontinuous WS2 contacts on rough Au generate larger net transient photocurrents than uniform, strongly coupled interfaces ─ a counterintuitive observation attributed to imbalanced electron and hole transfer from WS2 to Au. Crucially, we demonstrate that ultrafast charge extraction and separation suppress recombination-driven energy release and thereby prevent photo-induced degradation under ambient conditions, eliminating the need for encapsulation. These findings redefine interfacial design as a central control parameter for both performance and stability in 2D optoelectronic devices.

The authors' abstract, as published at the source. ACS Nano, 2026 · DOI ↗

TakeawaysIn the app
Ask the paperIn the app

The rest is in the Pofolia app

Takeaways and questions to the paper; new summaries every day for your field. Free.

Sign in on the web to open

Field: Materials Chemistry

Materials ChemistryMaterials Science